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AI DevOps Engineer

Open 52d posting dated yesterday

Summary

Lead AI DevOps Engineer designs and deploys scalable, secure cloud infrastructure for AI/ML/GenAI solutions, focusing on LLM/SLM integration, automation, and Kubernetes-based pipelines.

Seeking a Lead AI DevOps Engineer to oversee design and delivery of advanced AI/ML/GenAI solutions. The role combines cloud engineering and automation with hands-on leadership in deploying and integrating LLM/SLM models into enterprise applications, ensuring security, scalability, and operational excellence.

Tasks:

The person will act as a senior member of the Data Science & AI Competency Center, AI Engineering team, guiding delivery and coordinating workstreams.

  • Leading architecture and deployment of AI/ML/GenAI solutions (LLM/SLM at scale).
  • Driving automation of infrastructure, model lifecycle and inference pipelines.
  • Overseeing CI/CD processes for AI/ML/GenAI workloads.
  • Designing secure, scalable cloud infrastructures (Azure-focused).
  • Acting as technical advisor for stakeholders and client-facing solution design.
  • Mentoring engineers, promoting best practices, and fostering innovation in GenAI adoption.
  • Coordinating cross-functional teams to align AI engineering with business outcomes.
  • Ensuring cost optimization, monitoring and compliance across environments.

What We're Looking For:

  • 5+ years in DevOps/Cloud Engineering with AI/ML/GenAI project experience.

  • Proven experience deploying LLMs/SLMs (model serving, inference optimization, RAG, GenAI apps).

  • Expert proficiency in Linux and macOS administration; Windows a plus.

  • Advanced Python and scripting (Bash/PowerShell) for automation and integration.

  • Deep knowledge of IaC (Terraform, Ansible) and CI/CD (Azure DevOps, GitHub Actions, Jenkins).

  • Strong expertise in Azure cloud, Kubernetes, and enterprise AI/ML platforms.

  • Track record in delivering secure, production-ready solutions for AI/ML/GenAI.

  • Familiarity with monitoring, observability and FinOps practices.

  • Excellent leadership, communication and mentoring skills.

  • Fluency in written and spoken English.

See also

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