ML Platform Engineer - GPU Infrastructure
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Overview
Job Description
Job Title: ML Platform Engineer - GPU Infrastructure
Job SummarySupport team by designing, implementing, and maintaining the automation and ML workload enablement layer of the GPU cluster platform. This role focuses on optimizing GPU compute environments for AI/ML training and Isaac Sim simulation workloads, integrating GPU jobs into CI/CD pipelines, standardizing runtime environments, and supporting reliable storage and artifact management.
Required Experience3+ years of experience in ML Platform Engineering, DevOps, Infrastructure Engineering, or related fieldBachelor's or Master's degree in Systems Engineering, Computer Science, Computer Engineering, or related discipline
• Responsibilities• Support GPU cluster platforms for AI/ML and simulation workloads• Optimize GPU compute environments for ML training and Isaac Sim execution• Integrate GPU workload execution into CI/CD pipelines• Standardize runtime environments using containers and automation tools• Manage storage, artifacts, and workload outputs• Troubleshoot and improve platform reliability, scalability, and performance• Collaborate with ML, infrastructure, and engineering teams
• Required Skills• Experience with Linux, Kubernetes, Docker, and GPU infrastructure• Knowledge of CI/CD tools and automation scripting (Python/Bash)• Experience supporting AI/ML workloads and distributed systems• Familiarity with NVIDIA GPU technologies and containerized environments• Strong troubleshooting and performance optimization skills
• Preferred Skills• Experience with Isaac Sim or simulation workloads• Exposure to cloud platforms (AWS, Azure, or GCP)• Knowledge of monitoring and observability tools such as Grafana or Prometheus
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