AI Governance Lead
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Role details
Tech stack
Job description
The AI Governance Lead will own and evolve the enterprise AI governance framework-policies, standards, guardrails, and operating mechanisms-to enable responsible AI adoption at scale. This role partners closely with Security, Privacy, Compliance, Legal, Risk, Audit, Data Governance, and Technology to create clear, usable controls that accelerate delivery while containing risk. You will define and operationalize AI risk tiering, oversee governance patterns and reusable enablement assets (e.g., templates, checklists, control mappings), and ensure AI solutions align to responsible AI principles, regulatory expectations, and internal policy requirements., 1) Policy Ownership & Governance Frameworks
- Draft, maintain, and operationalize enterprise Responsible AI policies, standards, and procedures (e.g., scope, definitions, approvals, roles/accountabilities, documentation requirements).
- Establish governance requirements across the AI lifecycle (intake * design * build * validate * deploy * monitor * retire), including change control and exception handling.
- Translate policy into practical delivery guidance (playbooks, decision trees, āhow-toā guides) that teams can adopt without slowing down product velocity.
2) AI Risk Tiering, Controls & Guardrails (Enablement with Containment)
- Design and continuously improve an AI risk tiering model (e.g., Tier 0-4) based on factors such as impact, autonomy, data sensitivity, regulatory exposure, and customer/member risk.
- Define control sets by tier (e.g., human-in-the-loop requirements, testing depth, monitoring frequency, model governance artifacts, approval gates).
- Establish governance patterns that teams can reuse (approved prompts/patterns, model cards, data sheets, red teaming, evaluation protocols, safe deployment architectures).
- Build āfast pathsā for low-risk use cases and tighter governance for higher tiers-balancing scale and safety.
3) Cross-Functional Stakeholder Collaboration
- Serve as the primary convener across Security, Privacy, Compliance, Legal, Risk Management, Audit, and Data Governance to align on expectations and integrate controls.
- Lead working sessions to resolve ambiguity, drive decisions, and translate stakeholder needs into implementable governance requirements.
- Partner with platform and engineering leaders to embed governance into tools and workflows (e.g., intake forms, CI/CD gates, logging/monitoring, policy-as-code where feasible).
4) Governance Operations & Portfolio Oversight
- Define and run governance decisioning forums (e.g., risk review boards, architectural review checkpoints, tier adjudication).
- Implement a governance intake and review process for AI solutions (including evaluation of risk tier, required artifacts, and control readiness).
- Track and report governance KPIs: adoption of standards, compliance rates, exceptions, time-to-approval, post-deployment incidents, drift/monitoring health.
5) Responsible AI Assurance (Validation, Monitoring, Audit Readiness)
- Establish requirements and templates for: bias/fairness evaluation, explainability, robustness/safety testing, privacy impact assessment, and security threat modeling.
- Ensure production AI systems have adequate monitoring, logging, and incident response processes (including escalation paths and rollback plans).
- Maintain documentation and evidence to support internal/external audits, regulatory inquiries, and executive reporting.
6) Change Management & Workforce Enablement
- Create training and communications that drive consistent governance adoption across product, engineering, and business teams.
- Build communities of practice and āgovernance championsā within delivery teams to scale the operating model.
Core Competencies
- Policy craftsmanship: clear, implementable policy writing and standards design
- Risk-based thinking: tiering, controls mapping, and pragmatic decisioning
- Influence & facilitation: ability to align diverse stakeholders and drive outcomes
- Operational rigor: metrics, governance cadence, audit readiness
- Enablement mindset: scalable patterns and āpaved roadsā that accelerate safe adoption
Requirements
Bachelorās Degree or equivalent work experience.
Benefits & conditions
Conexess Group is aiding a large healthcare client in their search for an AI Governance Lead in a hybrid capacity. This is a long-term contract opportunity with a competitive compeā¦
- Just now + *
About the company
Since 1995, iTech Solutions Inc., has been providing IT Consulting and Direct Hire Services to the Insurance, Financial, Communications, Manufacturing and Government sectors with local offices in Connecticut, Minnesota, Colorado, Massachusetts, Tennessee, North Carolina, and New Jersey / Pennsylvania area. Our recruiting strategy is simple, if you want to find qualified IT professionals then use IT professionals to find them. So at iTech Solutions, our personnel are all career IT professionals with a wide range of IT experience. We can honestly say our staff understands the technologies, the complexities of finding and selecting the appropriate personnel and the pressures of running successful IT projects. Employer will not sponsor applicants for any employment visas, at hiring or in the future, including but not limited to H-1B visas. Corp-to-Corp or subcontract personnel will not be considered for this position. iTech Solutions, Inc. is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identify, national origin, age, protected veterans or individuals with disabilities.
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