Senior Site Reliability Engineer
Lumalabsai — United States · Posted ~1 day ago
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Team: Infra Reliability
SF Bay Area / Remote (US)
You'll own the GPU infrastructure Luma's research and product run on — thousands of NVIDIA and AMD GPUs across on-prem and multi-cloud (AWS and OCI).
As a Senior SRE, you keep training and inference clusters reliable and fast, and you help redesign them for the next level of scale.
This is a hands-on, close-to-the-metal role for a first-principles Linux engineer.
You'll be the final escalation for the hardest GPU, networking, and kernel-level failures, sometimes debugging directly with NVIDIA.
It fits someone who thrives on low-level problems in a fast, less-structured environment.
If you want a narrow, well-bounded ops role, this isn't it.
What You'll Own
Take end-to-end ownership of production GPU clusters for training and inference across AWS and OCI, keeping them highly available and performant.Join critical re-architecture sessions to redesign systems for higher efficiency and scale.Tune Linux performance deeply, at the OS and kernel level.Build automation in Python, Go, or Bash to manage, monitor, and self-heal infrastructure without heavy toil.Serve as the final escalation for the hardest GPU, networking (InfiniBand/RDMA), and system failures, working with vendors like NVIDIA.Help achieve and maintain security certifications (SOC 2 Type 1 & 2, ISO) with strong infrastructure security practices.
First 90 Days
One way the first 90 could unfold.
Days 1–30 — Immerse & Diagnose: Learn the current clusters across on-prem, AWS, and OCI, and where reliability and performance hurt most.Days 30–60 — Ship & Validate: Take ownership of a production cluster and ship automation or tuning that measurably improves availability or performance.Days 60–90 — Scale & Systemize: Contribute to the next-gen re-architecture and harden security and compliance practices.
What You Bring
5+ years as an SRE, production, or infrastructure engineer in a fast-paced, large-scale environment.Deep, hands-on Linux expertise, containerized systems, and low-level performance debugging.Working experience with Terraform, Airflow, and Ray.Strong experience with AWS or OCI.Practical experience with high-performance networking (InfiniBand, RDMA, or RoCE).Working knowledge of security best practices and compliance frameworks like SOC 2 and ISO.Comfort in a less-structured, fast-paced environment.
Nice to Have
Deep expertise with GPU tooling for NVIDIA and AMD (DCGM, ROCm).Experience managing large-scale GPU clusters for AI/ML training or inference.Familiarity with Kubernetes or orchestration frameworks like Ray.Deep expertise in data pipelines and infrastructure.
About Luma: Luma's mission is to build unified general intelligence that can generate, understand, and operate in the physical world.
We believe multimodality is critical for intelligence — the next step beyond language models comes from vision.
Luma is an equal opportunity employer.
Compensation Range: $168K - $252K
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