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Director of AI Security Engineering

Job in Greenville, Greenville County, South Carolina, 29610, USA
Listing for: MetLife
Full Time position
Listed on 2026-07-14
Job specializations:
  • IT/Tech
    Cybersecurity
Salary/Wage Range or Industry Benchmark: 140000 - 210000 USD Yearly USD 140000.00 210000.00 YEAR
Job Description & How to Apply Below

Description and Requirements The Team You Will Join

As part of Met Life’s Global Security team, you’ll work alongside world‑class experts to protect Met Life, our customers and our colleagues. The team is responsible for managing cybersecurity, IT risks and vulnerabilities, physical security, and more. In this fast‑paced, mission‑driven environment, you’ll join outstanding teammates to expand your skills, collaborate across the organization and implement innovative approaches to safeguard Met Life when it matters most.

Ready to make an impact? Join us if you want to embrace the rapidly evolving environment and use transformative technology to integrate and build security into the foundation of key initiatives across Met Life.

The Opportunity

The Director of AI Engineering will drive the solutions and participate in engineering for the following:

  • Drive technical engineering for operating technical and governance controls that help secure Met Life enterprise AI systems, vendor products and supporting infrastructure.
  • Speed the safe adoption of AI deployment at Met Life to enable increased efficiency, better customer satisfaction, and market leadership.
  • Operationalize and globally scale AI Security tooling suite to secure enterprise usage of AI with appropriate controls and tools without slowing the deployment.
  • Execute engineering for cutting edge Proof of Concepts for new tools that are changing rapidly to stay ahead of our industry competitors.
  • Ensuring we drive continuous improvement by identifying ways to harden environments, improve detection and response, and reduce manual operational effort.
Key Responsibilities
  • Lead a small team of dedicated professionals to provide global solutions for protecting Met Life AI functions.
  • Lead the technical engineering for standardization and keep aware of the latest changes in the AI environment.
  • Harden AI hosting environments, integrating security tooling into AI and application workflows, improving detection and monitoring, validating security configurations, and partnering with regional and response teams to drive risk reduction.
  • The successful candidate is someone with strong cloud and security fundamentals, solid understanding of AI and AI security, and enough hands‑on engineering and leadership experience to help implement and support controls directly in development, platform, or Kubernetes‑based environments.
  • Identify solutions for security gaps in cloud‑native and AI‑related environments.
  • Partner with security engineers, cloud/platform teams, developers, and AI engineers, and clearly communicate implementation requirements, risks, and remediation guidance.
Required Qualifications
  • Minimum 5 years of relevant experience in Technology and leading teams.
  • Candidate demonstrates a strong understanding of core cloud security concepts such as identity and access management, network segmentation, secrets management, encryption, logging and monitoring, workload isolation, secure configuration, and least privilege across modern cloud environments.
  • Demonstrates a working understanding of how generative AI, machine learning, and agentic AI systems are built, deployed, and integrated, along with core risks such as prompt injection, sensitive data exposure, insecure output handling, model misuse, excessive agency, supply chain risk, and weak access controls. The candidate should also understand MCP and A2A architectures, including risks associated with each layer.
  • Experience implementing, tuning, or supporting security controls and tools in production environments, including monitoring, posture management, vulnerability management, data protection, identity, runtime security, or detection capabilities.
  • Experience with container security and cloud foundation fundamentals, including images, pods, name spaces, RBAC, secrets handling, network policies, admission controls, and common misconfiguration risks.
  • Experience with secure handling of sensitive data used by or exposed to AI systems, including data classification, access boundaries, privacy considerations, retention concerns, and data loss prevention concepts.
  • Curiosity and willingness to learn evolving AI technology.
Preferred…
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