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    Yellow.ai, a Global Leader in Enterprise Agentic AI, to Go Public via $550 Million Merger with Bluerock Acquisition Corp.
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August 3, 2026
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Business combination disclosure outlines shareholder approval, registration requirements, financing conditions, and forward-looking risks for the proposed public listing.
The proposed business combination would take Yellow.ai public through a definitive agreement with Bluerock Acquisition Corp., subject to customary closing conditions and shareholder approval. Bluerock intends to file a Form S-4 registration statement containing a proxy statement/prospectus for proxy solicitation and securities issuance in connection with the transaction. The communication is not an offer or solicitation and states that no securities offering may occur without compliance with applicable registration, qualification or exemption requirements. Transaction projections and anticipated benefits are forward-looking statements subject to material risks and uncertainties.
August 3, 2026
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Bilateral investment and trade facilitation drive proposed co-investment, digital cooperation and advanced manufacturing partnerships between Indian and Uzbek businesses.
India-Uzbekistan cooperation is proposed through co-investment, co-manufacturing and co-innovation, supported by the Bilateral Investment Treaty to promote investor confidence and reciprocal investment. Priority sectors include mining, textiles, healthcare, agriculture, food processing, digital technologies and advanced manufacturing. Trade facilitation measures include reducing trade barriers, mutual recognition of standards, approvals, testing and certification, customs digitalisation and improved trade routes. Regulators and standard-setting bodies are expected to cooperate under a structured, time-bound economic partnership.
August 3, 2026
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Concessional agricultural credit supports working capital, crop diversification, allied activities, and digital expansion under the Kisan Credit Card scheme.
The Kisan Credit Card-Modified Interest Subvention Scheme provides concessional institutional credit to reduce farmers' interest burdens and improve timely working-capital access. The scheme is reported to support cropping intensity, multi-season cultivation, diversified crop portfolios, timely input use, and credit discipline through the Prompt Repayment Incentive. It also supports dairy, livestock, and fisheries-based income diversification. Credit-delivery measures include collateral-free lending, digital platforms, simplified applications, coverage expansion, and awareness campaigns. State-wise data tracks operative accounts, outstanding credit, and non-performing Kisan Credit Card accounts.
August 3, 2026
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Banking inclusion expands rural access while digital credit systems and payment security controls address service delivery and cyber fraud.
Banking inclusion is pursued by providing banking outlets within a five-kilometre radius of inhabited villages, with branch expansion permitted subject to rural-coverage requirements and continuing assessment of uncovered areas. Agricultural credit delivery uses digital loan, beneficiary-verification, processing and claim-settlement systems. Digital payment security measures require minimum controls for payment channels and include fraud-intelligence sharing, artificial-intelligence-based identification of money-mule activity, digital lending-app analysis, cyber-incident reporting, public awareness campaigns and electronic-banking training.
August 3, 2026
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Foreign exchange market movement strengthened the rupee as lower crude prices, investment inflows and improved risk sentiment provided support.
Foreign exchange market movement saw the rupee strengthen for a sixth consecutive trading session against the US dollar, supported by declining global crude oil prices, a softer dollar, foreign institutional investment inflows and gains in domestic equity markets. Improved global risk sentiment followed the decision to defer planned US military strikes against Iran and allow diplomatic engagement. Renewed geopolitical tensions were identified as a factor that could limit further appreciation.
August 3, 2026
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Quarterly financial performance reflects revenue growth, improved standalone profitability, and continued investment in AI-led digital technology platforms.
Quarterly financial performance reported revenue growth in standalone and consolidated operations, higher standalone profit before tax, and a return to consolidated profitability. The company continues to invest in an AI-led, intellectual-property-driven digital technology strategy through enterprise software, SaaS platforms, digital commerce, cloud, data and AI solutions. Its priorities include scalable platforms, proprietary technology assets, recurring-revenue offerings, partnerships and selective acquisitions. Complete financial results, notes to accounts and regulatory disclosures are available through exchange filings and the company website.
August 3, 2026
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MSME delayed-payment reforms strengthen award recovery, faster dispute adjudication, invoice discounting, and interim supplier payment protection.
MSME delayed-payment reforms seek faster adjudication, strengthened recovery and improved liquidity for enterprise suppliers. Courts may direct payment of at least half of an awarded amount where a setting-aside application remains pending beyond six months. Mediated settlements and arbitral awards may be recovered as arrears of land revenue and recognised as legally enforceable debts under the insolvency framework. The measures also provide graded penalties, voluntary digital registration, invoice settlement through the Trade Receivables Discounting System, and additional Facilitation Councils.
August 3, 2026
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Monetary policy rate setting remains cautious as inflation, liquidity, growth and global uncertainty shape the policy stance.
Monetary policy rate setting is expected to remain cautious amid global uncertainty, rising inflation risks and steady domestic growth. The inflation outlook is affected by energy-price pass-through, higher input costs, and seasonal and monsoon-related food-price pressures. Policy decisions are expected to remain data-dependent, guided primarily by domestic inflation, liquidity conditions and economic growth. A cautious or neutral stance is identified as preferable while external risks and inflation developments persist.
August 3, 2026
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Forward-looking financial disclosure raises revenue and earnings guidance while describing non-GAAP measures, capital allocation, and material business risks.
Financial performance reporting identifies increased bookings, revenue growth, continuing earnings, and backlog, with segment-level operating and margin measures. The release addresses cash flow, capital allocation through dividends, acquisitions and share repurchases, and increased full-year revenue and earnings guidance. Forward-looking statements concerning financial performance, operations, demand, liquidity and capital deployment are subject to identified risks and uncertainties. Non-GAAP measures are presented as supplemental to GAAP measures, with definitions and reconciliations stated to be available in accompanying materials.
August 3, 2026
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Counterfeit drug enforcement targets illicit manufacture, storage and trafficking networks, with coordinated seizures and referral of non-narcotic stock.
Counterfeit-drug enforcement under Operation Vajra addressed an inter-state network involved in the illicit manufacture, storage and distribution of narcotic drugs, psychotropic substances and spurious pharmaceutical products. Searches of unregistered godowns recovered narcotic products, unauthorisedly manufactured Buprenorphine injection ampoules, and counterfeit non-NDPS medicines. A farmhouse-based illicit manufacturing facility was dismantled, with machinery, chemicals and related materials seized under the NDPS Act, 1985.
August 3, 2026
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Anti-smuggling enforcement targets concealed gold, narcotics, protected products, prohibited e-cigarettes and restricted imports through coordinated intelligence operations.
Intelligence-led anti-smuggling operations resulted in seizures of foreign-origin gold, narcotic drugs, hydroponic weed, protected wildlife and forest products, prohibited electronic cigarettes, and restricted poppy seeds and areca nuts. The operations identified concealment through fabricated baggage cavities, false cargo declarations, misdeclaration of origin, forged documentation, and concealment in transport vehicles. Poppy seeds are restricted under the Foreign Trade Policy and may be imported only subject to conditions concerning legally cultivated produce from designated countries and registration of import contracts with the Narcotics Commissioner.
August 3, 2026
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Tax devolution advance instalment strengthens State finances for accelerated capital and developmental expenditure through distribution of Union tax proceeds.
Tax devolution was released to State Governments as an additional advance instalment alongside the normal monthly devolution schedule. The fiscal transfer shares net proceeds of Union taxes and duties with States, with the stated purpose of strengthening State finances and supporting accelerated capital and developmental expenditure. The release includes a State-wise distribution of tax-devolution proceeds.
August 3, 2026
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Financial performance reporting highlights revenue and EBITDA growth, garmenting recovery, retail optimisation, ESG commitments, and forward-looking risk disclosures.
Financial performance reflects growth in total income and EBITDA, with improved margin, reduced net working-capital days, and a net-cash position. Branded textiles and high-value cotton shirting reported lower revenue due to the prior-year base effect, while branded apparel grew but faced lower margin from channel mix. Garmenting improved through order-book execution, tariff rationalisation, and new global clients. ESG priorities include female representation, waste-management initiatives, renewable energy, emissions reduction, and workplace safety. Forward-looking statements remain subject to regulatory, political, economic, and technological risks.
August 3, 2026
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Foreign exchange market support strengthens the rupee as lower crude prices, portfolio inflows and reserve growth improve sentiment.
Foreign exchange market conditions supported an early appreciation of the rupee against the US dollar, attributed to lower global crude oil prices, a weaker dollar, sustained foreign portfolio inflows, higher foreign exchange reserves, and Reserve Bank of India presence in the foreign exchange market. Domestic equity market gains and net foreign institutional equity purchases were also identified as supporting factors.
August 2, 2026
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Gold smuggling detection targets sophisticated concealment methods through strengthened passenger profiling, intelligence gathering and coordinated investigations into organised networks.
Gold smuggling detection at Kerala airports led to multiple seizures, registration of cases and arrests in alleged smuggling attempts. Organised networks reportedly use gold in paste or compound forms concealed in clothing, body cavities, aircraft seats and other unconventional locations. Enforcement measures include strengthened passenger profiling, intelligence gathering and inter-agency coordination, while investigations continue to identify associated syndicates and financiers.
August 2, 2026
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Offshore exploration funding supports deepwater drilling, shared infrastructure and seismic data to strengthen domestic hydrocarbon production potential.
The Samudra Manthan National Offshore Exploration Scheme provides direct budgetary support for high-risk deepwater and ultra-deepwater exploratory drilling, subject to cost-sharing and per-well limits. Support is available to eligible operators holding or securing exploration acreage. The scheme also funds offshore data acquisition and shared subsea, receipt and processing infrastructure through a Common Hub Infrastructure model. It is intended to promote risk exploration, improve commercialisation of offshore discoveries and strengthen domestic hydrocarbon production potential within the existing exploration and licensing framework.
August 1, 2026
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GST compliance enforcement combines taxpayer refunds, analytics-based fraud detection, cancellation of fake registrations, and recovery of outstanding VAT arrears.
Punjab attributed increased GST collections to voluntary compliance, intelligence-based enforcement and technology-driven tax administration, while facilitating compliant taxpayers through timely GST refunds. Data analytics, risk profiling and field verification were used to identify tax evasion, bogus billing, fake input tax credit networks and misuse of the GST registration framework. Measures included penalties, cancellation of fraudulent registrations and recovery of long-pending VAT arrears through attachment and auction of defaulters' properties.
August 1, 2026
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Cross-border barter trade resumes through Shipki La, subject to permitted goods, time limits, and import-export compliance requirements.
Cross-border barter trade through Shipki La between India and Tibet resumed after a six-year interruption. Traders may exchange specified goods under a barter arrangement and must return within 72 hours. Traders are required to comply strictly with import-export regulations prescribed by the Union Ministry of Commerce, emphasising transparency and regulatory compliance. Expansion of permitted goods may be pursued through prescribed governmental and external-affairs channels.
August 1, 2026
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Export growth projections outline pathways for Odisha to expand merchandise trade through export diversification, MSME support and financing initiatives.
Export growth projections for Odisha set out base, optimistic and ambitious scenarios through FY 2029-30, based respectively on historical growth, envisaged national export growth, and a larger share of national exports. Odisha's export basket remains concentrated in metals and minerals, led by aluminium products, with China as the principal export destination. Odisha Vision 2047 identifies exports, including MSME contributions, as an economic transformation driver, while export-financing and risk-mitigation initiatives aim to address financing gaps for exporters and MSMEs.
August 1, 2026
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GST compliance enforcement through AI analytics supported sustained net GST collection growth despite rate rationalisation reforms and reduced compliance costs.
GST revenue mobilisation in Andhra Pradesh showed year-on-year growth in net GST and total commercial tax collections through July 2026, despite rate-rationalisation reforms. Revenue growth was attributed to AI-based scrutiny and analytics, machine-learning risk scoring, AI-driven IGST reversals, UPI-based enforcement analytics, data sharing, predictive analytics, registration verification, and Aadhaar-integrated expansion of the professional-tax base. These measures were stated to strengthen compliance, curb wrongful input tax credit claims, broaden taxpayer coverage, and improve revenue mobilisation.

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Winning in the AI Era: The New Playbook for Indian Banks - Inaugural Address by Shri Sanjay Malhotra, Governor, Reserve Bank of India at the FIBAC 2026 Conference, Mumbai, August 11, 2026

August 12, 2026

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Distinguished dignitaries, bankers, captains of industry, friends from the technology sector, fintechs, policymakers, press, academia and colleagues from the RBI, good morning to all of you!

It is my pleasure to be back here at the 2026 edition of the FIBAC. It is an important annual conference that brings together the stalwarts of banking and industry to exchange ideas, foster innovation and strengthen collaboration. I congratulate both FICCI and IBA for putting together this event and thank the organisers for giving me the opportunity to share my thoughts today.

The theme of the conference – Artificial Intelligence - has been well chosen. It is apt and timely. It is a theme that, I believe, will define this decade of Indian banking as decisively as liberalisation defined the 1990s and digitalisation defined the 2010s.

I also like the use of the word "playbook". Artificial Intelligence is not a single technology to be procured, nor a project to be completed. It is a new way of doing business, of running a bank. It is a shift in how we evaluate risk, serve customers, price capital, and organise institutions. Many banks in this room are already deploying AI, and many more are considering it. The only question is whether you shape the AI journey with intent, or you let it shape you by default.

Building on FIBAC 2025

Before I turn to AI, let me briefly reconnect with something I shared at this very conference last year. At FIBAC 2025, I had spoken of three priorities that would guide our regulation-making going forward: strengthening financial stability, enhancing ease of doing business, and expanding bank credit while reducing the cost of intermediation.

On strengthening financial stability, we have taken a number of measures. We have finalised the standardised approach for credit risk capital, ECL framework, Effective Interest Rate (EIR) related changes in investment guidelines, prudential norms on project finance, related party transactions, dividends policy, guidelines on Net Open Position (NOP) among others. We are well on target to implement all applicable Basel III guidelines with effect from April 1, 2027 on a calibrated glide path. The regulatory architecture is further bolstered by our enhanced supervision, especially with regard to technology risk.

On enhancing ease of doing business too, we have made good progress. We have reduced regulatory burden on Boards, consolidated regulatory and supervisory instructions, streamlined forms of business, strengthened PRAVAAH, harmonised control and assurance functions, rationalised current-account and working-capital norms, delegated certain foreign exchange related approvals to ADs, etc.

On expanding bank credit, we have continued to strengthen the public digital rails like the Account Aggregator ecosystem and the Unified Lending Interface, that lower the cost of originating and underwriting credit, particularly for MSMEs and underserved borrowers. Rationalisation and updation of regulations related to PSL, project finance, Alternative Investment Funds (AIFs) and acquisition finance, among others, will enhance credit flow to deserving sectors.

Measures such as removal of Investment Fluctuation Reserve (IFR), revised norms on interest rate on deposits and rationalisation of DICGC premium, LCR and CRR shall reduce the cost of intermediation.

We will continue to work on these areas.

Why This Moment Matters

Let me now come to the theme of the conference – AI and start with why the Reserve Bank considers this a matter worthy of our attention.

Every major technological revolution has expanded the frontier of human capability. Steam multiplied muscle-power, electricity multiplied energy, computers multiplied calculation, and the internet multiplied connectivity. The AI wave goes deeper: it multiplies intelligence. AI extends the capability to make judgments at a scale and speed no human workforce could match. That is precisely its promise, and precisely its risk.

India today sits at a unique vantage point. We have the world's most advanced public digital infrastructure – Aadhaar, UPI, Digilocker, ONDC – and more like the Account Aggregator and ULI that are being built on the conviction that infrastructure should be a public good on which private innovation can flourish. AI, layered on top of this stack, has the potential to do for financial judgment what UPI did for financial transactions: make it instant, granular, and available to the last mile. AI, deployed well, can close existing gaps in financial inclusion faster than any preceding generation of technology. Deployed carelessly, it can also entrench new forms of exclusion and instability at a pace regulators and banks may struggle to keep up with.

The Reserve Bank's own Committee for the Framework for Responsible and Ethical Enablement of AI (FREE-AI), which submitted its report last year, put this tension nicely. Let me speak of this tension now.

The Case for AI in Indian Banking

I will be unambiguous: the Reserve Bank sees AI as a capability to be responsibly harnessed and not merely as a risk to be contained. There are at least five reasons why Indian banks cannot afford to sit on the sidelines.

First, AI changes the economics of credit delivery fundamentally. Traditional underwriting relies on financial history – precisely the data that is thin or absent for a new-to-credit borrower, a gig worker, or a small enterprise without formal books. AI models, trained on alternative data – cash flows, GST filings, utility payments, digital footprints – can extend the frontier of "bankable" India considerably further than manual underwriting ever could, at a fraction of the marginal cost per loan.

At the same time, AI-enhanced credit risk models, liquidity forecasting, and scenario analysis allow banks – and, indeed, us, as the regulator – to see emerging stress earlier than lagging financial statements permit.

Second, AI allows banks to serve customers better – provided it is used to augment rather than merely replace human judgment. A relationship manager assisted by an AI system that presents the right product, the right risk flag, can serve a higher number of customers more efficiently. AI-assisted grievance redressal, and personalised financial guidance can enhance service quality to customers.

Third, and perhaps most important for a country of our size and diversity, AI has the potential to be a profoundly inclusive technology. Voice interfaces in Indian languages can simplify banking by removing the language barrier. Predictive models can identify borrowers on the cusp of default early enough to counsel rather than merely recover. Used well, AI may be the most powerful accelerator to financial inclusion.

Fourth, it can enhance operational efficiency. There is scope to reduce cost to income ratios or intermediation costs in India. Effective adoption of AI can significantly improve the productivity of Indian banks across operations, sales and customer service, and credit and collections. Document processing, reconciliation, and internal audit sampling are all ripe for AI-assisted automation, freeing skilled staff for judgment-intensive work. It can automate transaction reporting, and regulatory return preparation, reducing both compliance cost and the operational risk of manual error.

Fifth, it is AI that can beat AI delivered fraud. Fraud today moves at the speed of an API call. A rules-based fraud engine, however well designed, is perpetually one step behind a fraudster who adapts more frequently. It is only machine-learning models which continuously learn from transaction patterns and can identify anomalies in real time rather than after the loss has crystallised.

This list is illustrative, not exhaustive, and I do not offer it as a mandate. Every bank's playbook should be its own – shaped by its customer base, its risk appetite, and its capacity to govern what it deploys.

But I would urge every bank present here, to ask themselves as to where it stands in AI adoption and how does it accelerate the adoption. You will need to invest in technology: IT infrastructure, talent, skilling and reskilling, forging sustainable partnerships and building governance structures. None of this happens overnight, and none of it happens by accident. It requires a deliberate, board-driven strategy, backed by sustained investment, and strong intent rather than a series of disconnected projects.

The Risks We Must Keep Firmly in View

I now turn to the second half of the playbook, which pertains to the risks.

The first risk is the "black box" problem. Many advanced AI models – particularly deep learning and generative systems – do not readily explain their own reasoning. When an AI system recommends against extending credit to a small business, both the borrower and the regulator are entitled to know why. Opacity is not merely an inconvenience; it strikes at the heart of accountability. It makes it exceedingly difficult for auditors, boards, and the Reserve Bank to be confident that a model is doing what it was designed to do.

The second risk is bias and exclusion. A model trained on historical lending data may, if left unchecked, learn and perpetuate existing biases – biases against certain geographies, certain occupations, certain communities. An algorithm that appears neutral on its face can produce deeply discriminatory outcomes in practice. Fairness in AI-driven finance is not a compliance checkbox; it is a design requirement from day one.

The third risk is concentration and herding. If a handful of foundation models, or a handful of technology vendors, come to underpin credit and trading decisions across much of the banking system, an error, a bias, or a vulnerability in that shared infrastructure ceases to be one bank's problem and becomes a systemic one. AI-driven trading models, if too similar across institutions, can synchronise behaviour in stressed markets and amplify volatility rather than dampen it – a risk this Reserve Bank watches with particular care.

The fourth risk is third-party and vendor dependence. Very few Indian banks, especially smaller ones, will build foundation models in-house. Most will consume AI capability through vendors and technology service providers. This is entirely understandable – but it does not mean that governance can stop at your own walls. Your outsourcing agreements must carry AI-specific accountability: the right to audit, the right to explanation, and a credible exit plan, should a vendor or model need to be replaced.

The fifth risk is data privacy and security. AI systems are hungry for data, and the temptation to feed them more than what is necessary, retain them longer than what is essential, or use them for purposes beyond what the customer consented to, will be constant. Compliance with the Digital Personal Data Protection Act is the floor, not the ceiling, of what customers should expect from their bank.

The sixth risk is cyber and adversarial vulnerability. AI systems can themselves be targets – through data poisoning, model manipulation, or adversarial inputs designed to fool a fraud detector into waving through a fraudulent transaction. As AI becomes more central to your defences, it also becomes a more attractive target for those seeking to defeat it.

And the seventh – perhaps the most important – is the erosion of human judgment and accountability. No matter how sophisticated the model, the responsibility for a bank's decisions rests with the bank, not with its algorithm. "The model decided" can never be an acceptable answer to a customer, an auditor, or the Reserve Bank. Meaningful human oversight – the ability to explain, to intervene, and, where necessary, to override – must remain a design principle, not an afterthought.

What We Expect, and What You Should Expect of Us

The Reserve Bank's approach to AI, articulated through the FREE-AI Committee's recommendations and draft guidelines on Model Risk Management resolves the tension between the promise and the risk of AI.

It rests on a simple philosophy: innovation and safety are not opposing goals; they are complementary requirements of a durable financial system. We have deliberately chosen a principles-based, proportionate approach over a rigid, prescriptive one, because AI capability and risk will look different for a large bank running proprietary models than for a small bank utilising a vendor's off-the-shelf product.

That said, certain expectations will apply across the board. I would urge every institution here to treat the following as immediate priorities rather than distant compliances:

  • Maintain a complete inventory of every AI system in use – including those embedded in vendor products – so that neither you nor we are ever surprised by what is running inside your institution.

  • Establish board-approved AI governance policies, with clear accountability for outcomes, not merely for technology procurement.

  • Build the capacity to explain AI-driven decisions that materially affect a customer, particularly in lending and fraud outcomes.

  • Red-team and stress-test AI systems before deployment and periodically thereafter, just as you would stress-test any other material risk.

  • Preserve meaningful human oversight at every point where an AI system's error could cause material harm to a customer or to financial stability.

We, in turn, are committed to engaging with the industry as this technology and its risks evolve through a willingness to learn alongside you rather than regulate from a distance; and to providing proportional, consultative, evidence-based and agile regulation making and supervision.

We also remain committed to providing the regulatory sandbox as a safe space for testing innovative use cases. We shall continue to facilitate and catalyse development of common utilities such as MuleHunter and the proposed Digital Payments Intelligence Platform to strengthen fraud detection and safeguard the system.

Concluding Thoughts

Let me now conclude.

We have much at stake –building further on the highly successful PMJDY; an MSME credit market, still underserved, estimated at the tens of lakhs of crore rupees, a retail credit culture that is only now maturing, customer service that can be vastly improved, intermediation costs that can be reduced further; and digital frauds that must be curbed.

We need to leverage AI for this. The banks that will win in the AI era will not necessarily be the ones that adopt the most AI, or the fastest. They will be the ones that adopt it with the deepest understanding of what they are deploying, the clearest accountability for its outcomes, and the strongest commitment to the customer's trust that has always been, and will remain, the true capital of Indian banking.

The role of the bank boards, the risk officers, the technologists, and yes, the regulator is critical in this regard. We all must work together, deliberately, and quickly for this purpose.

I look forward to this journey with you.

I wish the conference much success.

I also wish you all a happy Independence Day in advance.

Thank you.

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