01The brief
Executive summary.
- 01The global regulatory environment for AI in financial services has shifted from observation to obligation. The EU AI Act — the world's first comprehensive legal framework for AI — is now in force with explicit extraterritorial reach and prescriptive requirements for high-risk use cases in banking and insurance, including credit scoring and underwriting. Singapore's MAS has issued proposed AI Risk Management Guidelines requiring board-level accountability and supervisory pre-approval for high-impact deployments, with final guidelines expected mid-2026 and compliance deadlines in the latter half of 2027. The US has revised its foundational model risk management guidance through SR 26-2 — a significant modernisation reflecting over fifteen years of supervisory experience — though it simultaneously carves out generative and agentic AI, creating a governance gap that institutions must bridge through separate, principles-based frameworks. Across jurisdictions, a convergence is visible around three control families: lifecycle model governance, customer protection and explainability, and operational resilience with third-party accountability.
- 02Against this regulatory acceleration, institutions are deploying AI at scale and speed. Average projected AI investment at US banking organisations reached $177 million in Q1 2026, up from $133 million just one quarter prior. Agentic AI — effectively absent from industry surveys two years ago — is now being piloted or deployed by more than half of respondents. Yet the governance infrastructure required to manage this deployment has not kept pace. Generative and agentic AI fall outside SR 26-2's formal scope, creating a voluntary, fragmented oversight landscape in the US. Data bias controls required by EU AI Act Article 10 go well beyond BCBS 239, demanding new processes that most institutions have not yet built. Third-party concentration across cloud, hardware, and foundation-model providers creates systemic vulnerabilities that standard vendor due diligence frameworks were not designed to assess. Boards and senior management teams that cannot demonstrate documented AI governance, senior accountability structures, and continuous monitoring capabilities face the highest supervisory risk in the coming examination cycle.
02Contents
Inside the report.
- The global regulatory landscape: EU AI Act, US SR 26-2, UK approach, Singapore MAS guidelines, and key jurisdictional conflicts
- Governance structure requirements: board and senior management accountability, role definitions, and proportionality by institution size
- Model risk management evolution: SR 26-2's risk-tiered approach, the GenAI carve-out, and the emerging parallel governance layer
- Use-case-specific governance obligations: credit underwriting, fraud detection, KYC, claims automation, and agentic AI deployment
- Data governance and EU AI Act Article 10: bias detection, representativeness, and the gap beyond BCBS 239
- Third-party and supply-chain risk: concentration vulnerabilities, FS AI RMF requirements, and vendor contract standards
- Systemic and cyber risk: frontier AI threats, agentic system risk, and the transitional period of elevated exposure
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0356 cited
References.
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