Salary Range
SGD 84,000 - SGD 114,000 /year
SGD 7,000 - SGD 9,500/month
Skills Required
Job Description
Role Overview
The Data & AI Governance Lead will design, implement, and operationalize enterprise-grade data and model governance frameworks to support AI, ML, and GenAI initiatives within regulated environments. The role ensures that AI solutions are secure, compliant, auditable, and scalable, while enabling innovation across business stakeholders. The position partners closely with Data Management Office (DMO), Risk, Compliance, Finance, IT, and business teams to translate regulatory expectations into practical and enforceable controls across Azure, Databricks, and AI platforms.
Key Responsibilities
1. Data Governance for AI
Define and operationalize enterprise data classification, metadata standards, and attribute tagging for AI usage, including PII/PCI/PHI, sensitivity tiers, usage restrictions, and consent.
Design access and entitlement models for AI and agent-based workloads, including:
Azure Entra ID integration
RBAC/ABAC entitlement models
Privileged access management
Break-glass procedures
End-to-end audit trails and traceability
Establish metadata, catalog, and lineage operating models using Collibra and/or Microsoft Purview, covering:
Lineage for AI pipelines
Governance of API-based data acquisition
Governance of vector databases and RAG stores
Define cross-border data usage rules aligned with MAS, HKMA, JFSA, GDPR, PDPA and other regulatory frameworks.
Set governance boundaries for platforms such as Databricks and Azure, including:
Unity Catalog governance
Lakehouse permissions and Delta Sharing
Data residency and jurisdictional controls
2. Model Governance (LLM / ML)
Implement lifecycle governance across ML and LLM models, including:
Model inventory and registration
Risk classification and tiering
Approval workflows and sign-offs
Model documentation and validation standards
Human-in-the-loop controls and checkpoints
Establish observability and monitoring for ML/LLM models, including:
Drift, bias, and performance monitoring
Prompt and output logging
Toxicity detection and filtering
Rollback mechanisms and release governance
Integration with MLflow and Model Registry platforms
Operationalize AI safety, including:
Red-teaming and adversarial testing
Secure prompt design principles
Sensitive data minimization and retention
AI incident response and escalation procedures
3. Ways of Working & Operating Model
Define and maintain AI governance frameworks, standards, policies, procedures, and RACI models.
Partner with DMO, Risk, Compliance, Finance, and IT stakeholders to ensure regulatory alignment and risk coverage.
Translate governance principles into technical controls across Azure cloud services, Databricks Lakehouse, LLM platforms, and AI agents.
Serve as a trusted advisor, balancing regulatory expectations and innovation enablement.
Candidate Profile (Must Have)
10+ years of experience leading data governance, AI governance, or model governance in regulated industries (preferably financial services).
Hands-on experience with:
Azure (including Entra ID)
Databricks and Unity Catalog
MLflow/Model Registry
Collibra and/or Microsoft Purview
Enterprise IAM and access control models
Strong understanding of APAC regulatory expectations and cross-border data requirements.
Proven experience developing policies, standards, and operating procedures.
About KNOWLEDGESG GLOBAL PTE. LTD.
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