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Senior Site Reliability Engineer - Fleet

Role overview

Qualifications

  • 7+ years of experience in Site Reliability Engineering, HPC Engineering, DevOps, or a similar role
  • Strong understanding of modern AI infrastructure, from GPU architectures to hardware performance optimization
  • Solid understanding of Python and Go, with experience working with SWE teams to improve internal tooling
  • Experience with monitoring and alerting tools (e.g., Prometheus, Grafana, Clickhouse)

Responsibilities

  • Build and operate monitoring and alerting for cluster health
  • Remotely deploy and configure large-scale HPC clusters for AI workloads using automation
  • Troubleshoot and resolve cluster issues across InfiniBand/RoCE, NCCL, GPU-direct, and fabric
  • Participate in on-call rotations and lead incident response for cluster-level problems

About the company

Lambda logo

Lambda

Cloud Computing & Infrastructure (IaaS/PaaS)

Lambda provides computation to accelerate human progress. We're a team of Deep Learning engineers building the world's best GPU cloud, clusters, servers, and workstations. Our products power engineers and researchers at the forefront of human knowledge. Customers include Intel, Microsoft, Google, Amazon Research, Tencent, Kaiser Permanente, MIT, Stanford, Harvard, Caltech, Los Alamos National Lab, Disney, and the Department of Defense.

Company details

Company typeSME
IndustryCloud Computing & Infrastructure (IaaS/PaaS)
Company size51 - 200

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Job description

Lambda, The Superintelligence Cloud, is a leader in AI cloud infrastructure serving tens of thousands of customers. Our customers range from AI researchers to enterprises and hyperscalers. Lambda's mission is to make compute as ubiquitous as electricity and give everyone the power of superintelligence. One person, one GPU.

If you'd like to build the world's best AI cloud, join us.

*Note: This position requires presence in our San Francisco or Bellevue office location 4 days per week; Lambda’s designated work from home day is currently Tuesday.


What You’ll Do

  • Build and operate monitoring and alerting for cluster health — fabric, GPU, power/thermal, and job-level signals — to detect and respond to issues proactively

  • Remotely deploy and configure large-scale HPC clusters for AI workloads using automation wherever possible

  • Automate cluster lifecycle: operating systems, firmware, drivers, and networking, managed as code (Ansible, Terraform) rather than by hand

  • Create runbooks and automated remediations for common cluster failure modes, designed so Support and HPC Support can run them safely

  • Troubleshoot and resolve cluster issues across InfiniBand/RoCE, NCCL, GPU-direct, fabric, switching, and power — working closely with on-site deployment teams

  • Participate in on-call rotations and lead incident response for cluster-level problems

  • Contribute to and maintain Standard Operating Procedures, and feed clear requirements back to other engineering teams on simplification, stability, and operational efficiency

You

  • 7+ years of experience in Site Reliability Engineering, HPC Engineering, DevOps, or a similar role

  • Have a strong understanding of modern AI infrastructure, from GPU architectures to hardware performance optimization

  • Strong understanding of Linux-based systems in a distributed environment

  • Are experienced configuring and troubleshooting InfiniBand (IB), RoCE, CLOS fabrics, 100GbE, Ethernet/switching, GPU-direct, and NCCL environments

  • Solid understanding of Python and Go, with experience working with SWE teams to improve internal tooling.

  • Experience with monitoring and alerting tools (e.g., Prometheus, Grafana, Clickhouse)

  • Proficiency in automation and configuration management tools (e.g., Ansible, Terraform)

  • Have excellent problem-solving and troubleshooting skills and an innate attention to detail

  • Passion for continuous improvement and innovation

Nice to Have

  • Experience with machine learning / deep learning frameworks (PyTorch, TensorFlow) and benchmarking tools (DeepSpeed, MLPerf)

  • Knowledge of containerization and orchestration technologies (e.g., Docker, Kubernetes)

  • Experience building and/or operating HPC resources.

  • Depth in the NVIDIA hardware and firmware ecosystem

  • Experience with data center power and thermal design

  • Background in chaos engineering or similar reliability testing methodologies

  • Understanding of compliance frameworks (SOC 2, ISO 27001, etc.)

Salary Range Information

The annual salary range for this position has been set based on market data and other factors. However, a salary higher or lower than this range may be appropriate for a candidate whose qualifications differ meaningfully from those listed in the job description.


About Lambda

  • Founded in 2012, with 500+ employees, and growing fast

  • Our investors notably include TWG Global, US Innovative Technology Fund (USIT), Andra Capital, SGW, Andrej Karpathy, ARK Invest, Fincadia Advisors, G Squared, In-Q-Tel (IQT), KHK & Partners, NVIDIA, Pegatron, Supermicro, Wistron, Wiwynn, Gradient Ventures, Mercato Partners, SVB, 1517, and Crescent Cove

  • We have research papers accepted at top machine learning and graphics conferences, including NeurIPS, ICCV, SIGGRAPH, and TOG

  • Our values are publicly available: https://lambda.ai/careers

  • We offer generous cash & equity compensation

  • Health, dental, and vision coverage for you and your dependents

  • Wellness and commuter stipends for select roles

  • 401k Plan with 2% company match (USA employees)

  • Flexible paid time off plan that we all actually use

Equal Opportunity Employer

Lambda is an Equal Opportunity employer. Applicants are considered without regard to race, color, religion, creed, national origin, age, sex, gender, marital status, sexual orientation and identity, genetic information, veteran status, citizenship, or any other factors prohibited by local, state, or federal law.

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Marcus Rivera

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