Director of AI Operations & Governance (R5464)

Posted 2 Days Ago
Hiring Remotely in USA
Remote
280K-420K Annually
Expert/Leader
Aerospace • Artificial Intelligence • Machine Learning • Robotics • Software
Our mission is to protect service members and civilians with intelligent systems.
The Role
Lead AI operations and governance for workplace AI: own sustainment, licensing, security, observability, model monitoring/tuning, integrations, and governance. Build and lead a team, set strategy, manage costs, and ensure compliant, reliable production AI systems.
Summary Generated by Built In
Job Description:

Shield AI is seeking a Director of AI Operations & Governance to operationalize and govern our workplace AI ecosystem across all AI initiatives. Reporting to the VP of Workplace AI, this role will own license and platform operations, AI governance, security posture, and ongoing lifecycle management of AI tools that support Shield AI's business functions. The role will be the central owner of "post–dev-ops" for AI, ensuring systems are reliable, compliant, secure, and continuously improving in line with production usage and business needs, while building and leading the team responsible for AI sustainment.

This role requires significant hands-on technical capability across the machine learning and generative AI lifecycle — not just program oversight. The Director must be able to credibly evaluate, tune, and troubleshoot models and AI systems at a technical level in order to govern them effectively, partner with engineering, and make sound tradeoffs between reliability, performance, cost, and risk.

What you'll do:

    Technical AI/ML Ownership
  • Evaluate, benchmark, fine-tune, and adjust configurations of ML and generative AI models (including LLMs) in production, applying working knowledge of model training, tuning, and evaluation methodologies rather than relying solely on vendor documentation.
  • Apply applied AI/ML research and emerging techniques to inform build-vs-buy decisions, model selection, and architecture choices across the AI portfolio.
  • Partner directly with data science and ML engineering teams on model performance issues, drift detection, and retraining or reconfiguration needs, contributing technical judgment rather than acting purely as a liaison.
  • Maintain technical fluency in prompt engineering, retrieval-augmented generation, agentic/orchestration frameworks, and the practical distinctions between generative AI and traditional ML systems, and translate those distinctions into governance and staffing decisions.
  • AI Sustainment & Governance
  • Own AI sustainment and governance for workplace AI tools across enablement, bought solutions, and custom builds, acting as the central "run" function for the AI strategy, and building the team and processes to scale it.
  • Manage all AI-related licenses and entitlements: monitor usage, optimize allocations, drive reallocation, and partner with Finance for cost visibility and optimization.
  • Monitor production usage patterns and performance to recommend roadmap items, enhancements, and deprecations based on real-world dynamics in production.
  • Own and triage support tickets for workplace AI tools and platforms, driving resolution across vendors, internal engineering, and security partners.
  • Lead continuous evaluations of AI tools and models, including monitoring drift, benchmarking performance, and ensuring tools remain effective and aligned with business KPIs.
  • Maintain the updates and security outlook for AI platforms, coordinating patches, version upgrades, vulnerability remediation, and compliance with Shield AI security policies.
  • Orchestrate model swaps and configuration changes in production, including rollout planning, risk assessment, change control, and post-deployment monitoring.
  • Design, maintain, and govern shared prompt libraries, including standards for prompt quality, reuse, versioning, and training for end-users and builders.
  • Own management of secrets (API keys, credentials, tokens) used by AI tools and orchestrators, ensuring secure storage, rotation, and access control in partnership with Security and IT.
  • Define and maintain connectors and extensions (e.g., integrations into SaaS systems, data sources, and workflow tools) to ensure reliable, secure data access for AI workflows.
  • Establish and operate auditability frameworks for AI tools, including logging, traceability of AI-assisted actions, and reporting for compliance and risk management.
  • Lead AI governance practices for workplace AI (policies, guardrails, usage standards, approval workflows, exception processes) in partnership with Security, Legal, and HR.
  • Partner with business solution and build teams to ensure their deliverables meet sustainment, observability, and governance requirements before moving to production.
  • Define operational playbooks, SLAs, and incident response procedures for AI systems, including on-call patterns supported by contractors and platform specialists.
  • Leadership & Strategy
  • Build, lead, and develop a team of AI operations professionals, contractors, and platform specialists, establishing career paths and scaling the function as the organization matures.
  • Set the strategic direction for AI operations and governance, translating enterprise priorities into a multi-quarter roadmap and budget owned by this role.
  • Provide regular status and risk updates to the VP of Workplace AI and other senior leadership, including adoption metrics, reliability indicators, governance findings, and cost trends.

Required qualifications:

  • 15+ years in platform operations, ML/AI operations, DevOps, or SaaS sustainment roles, including significant experience in leadership/people management, with a track record of running production systems in a high-stakes environment (defense, aerospace, enterprise SaaS, or similar).
  • Direct, hands-on experience developing, training, fine-tuning, or evaluating machine learning models or generative AI systems — this is a core requirement, not a nice-to-have. Candidates should be able to speak credibly to model architecture, training/tuning approaches, and evaluation methodology.
  • Working knowledge of AI/ML research practices and the ability to apply current research to production decision-making.
  • Software engineering or data science background sufficient to engage deeply with technical teams on model behavior, integration issues, and system design tradeoffs.
  • Direct experience with AI platforms or orchestration tools (e.g., LLM providers, RPA/workflow tools like n8n, enterprise SaaS integrations) and their operational management, including at an organizational or strategic level.
  • Demonstrated understanding of the distinct technical and operational challenges of generative AI versus traditional ML — including differing skill requirements, risk profiles, and market/salary dynamics — and ability to apply that distinction to team design and hiring.
  • Strong background in governance, compliance, or security in the context of data-driven or AI systems, including familiarity with audit, logging, and access control best practices.
  • Demonstrated ability to manage licenses and cost optimization for SaaS or AI tools at scale, including working with Finance and procurement stakeholders, and managing significant budgets.
  • Hands-on experience with monitoring and observability stacks (logs, metrics, alerts) and using those signals to shape product roadmaps and operational improvements.
  • Strong technical fluency across APIs, connectors, and integrations; able to work closely with engineering and vendors to design and maintain extensions.
  • Proven track record building and leading high-performing teams, including hiring, mentoring, and developing talent across a mix of core staff and contractors.
  • Excellent executive communication skills, with ability to translate production dynamics and risk into clear recommendations for senior business and technical leaders, including executive stakeholders.
  • Experience operating in a hybrid environment of contractors and core team members, with the ability to define processes and standards that scale as the team matures.

#LF

Skills Required

  • 15+ years in platform operations, ML/AI operations, DevOps, or SaaS sustainment with leadership/people management experience
  • Direct, hands-on experience developing, training, fine-tuning, or evaluating machine learning models or generative AI systems
  • Working knowledge of AI/ML research practices and ability to apply research to production decisions
  • Software engineering or data science background sufficient to engage deeply on model behavior and system design
  • Direct experience with AI platforms or orchestration tools (e.g., LLM providers, RPA/workflow tools like n8n, enterprise SaaS integrations)
  • Understanding of technical and operational differences between generative AI and traditional ML and ability to apply to team design
  • Strong background in governance, compliance, or security for data-driven or AI systems, including audit, logging, and access control best practices
  • Demonstrated ability to manage licenses, cost optimization, and significant budgets for SaaS or AI tools at scale
  • Hands-on experience with monitoring and observability stacks (logs, metrics, alerts) and using signals to drive improvements
  • Strong technical fluency across APIs, connectors, and integrations with engineering and vendors
  • Proven track record building and leading high-performing teams, including hiring, mentoring, and developing talent
  • Excellent executive communication skills to translate technical risks and recommendations for senior leaders
  • Experience operating in a hybrid environment of contractors and core team members with scalable processes and standards

What the Team is Saying

Dylan
Mo
Willy
Michael
Vibhav
Kirby
Ryan
Evan

Shield AI Compensation & Benefits Highlights

  • Healthcare Strength Company materials describe excellent medical, dental, and vision coverage alongside a mental‑health EAP. Site perks such as an onsite gym in DC and a gym discount in San Diego support a health‑focused offering.
  • Retirement Support Careers materials highlight a 401(k) with company match as part of the standard package. A Total Rewards overview emphasizes retirement features within a broader, transparent compensation view.
  • Career-Linked Recognition & Rewards Compensation for in‑demand technical and senior go‑to‑market roles is described as competitive, with visible engineering ranges and top‑end packages. This points to meaningful upside tied to role, level, and scarce skills.

Shield AI Insights

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The Company
HQ: San Diego, CA
Year Founded: 2015

What We Do

At Shield AI, you won't wait years to see your work reach the field. You'll build hardware and software that operates in the real world right now, in the hands of the people who depend on it. Hivemind, our AI pilot, has been flying since 2018. It has flown more than 30 platforms, including an F-16, and it now sits under a U.S. Air Force production contract for Collaborative Combat Aircraft. When you write code or shape a system here, you contribute to technology with a proven flight record and a clear production future. V-BAT flies intelligence, surveillance, and reconnaissance missions with an operational record that stretches from Ukraine to the Indo-Pacific. It delivers eyes where they matter most, in the most demanding conditions on earth. The teams behind it watch their work get tested where the stakes are real. X-BAT takes its first flight this year. It's an AI-piloted fighter that needs no runway, built to operate where traditional aircraft can't. Join now and you help shape a program at its earliest, most formative stage. That's the kind of ground-floor work that defines a career. Do the most impactful work of your life, on problems that matter. Autonomy at this level asks a lot of you. You'll take on problems in perception, planning, and control that few teams anywhere are equipped to solve. You'll work across disciplines, from aerospace and robotics to machine learning and systems engineering, alongside people who hold themselves to an exacting standard and expect the same from you. Our mission is clear: protect service members and civilians with intelligent systems. That purpose runs through every decision, every design review, and every deployment. It's why the work here carries a weight you can feel. Ready to join our mission? Explore our open roles and find where you fit.

Why Work With Us

Founded in 2015 by a former Navy SEAL, Shield AI builds AI pilots and uncrewed aircraft. Veterans aren't an afterthought here, they're at every level. It's why the work carries weight: AI pilots and uncrewed aircraft flying real missions, from Ukraine to the Indo-Pacific, protecting service members and civilians.

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About our Teams

Shield AI Offices

Hybrid Workspace

Employees engage in a combination of remote and on-site work.

Typical time on-site: Flexible
HQSan Diego, CA
United Arab Emirates
Arlington, VA
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Frisco, Texas
Ukraine
London
Melbourne, Victoria
Taiwan, Province of China
Waltham, MA
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