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Lambda

Staff Software Engineer - Managed Kubernetes

Hybrid

Part remote, part office, you need to live within commuting distance of a named location.

Hybrid · Bellevue Office

Employer listed it 7 weeks ago · Added 5 days ago

Been open since 7 weeks ago. Long-running listings are sometimes left up after the role is filled.

Salary

$314,000 to $465,000

Location

Hybrid · Bellevue Office

Timezone

Not stated

Contract

Full-time

Experience

Lead

Category

Software

Published by the employer

Remote flexibility

Hybrid

This role is only partly remote, the employer expects time in the office around Bellevue Office, San Jose Office (Zanker), San Francisco Office (Fremont St), Hybrid, so you need to live within commuting distance.

What the employer says

  • Source listing states candidate location: "Bellevue Office, San Jose Office (Zanker), San Francisco Office (Fremont St), Hybrid"
  • Listing mentions "Hybrid" and 4 days per week in the office

What Nomaders makes of it

  • Not suitable if you plan to move between countries

The quotes above are the employer's own words; the reading is ours. Always check the original listing and employment terms before working from another country.

About the role

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, San Jose, or Bellevue office location 4 days per week; Lambda’s designated work from home day is currently Tuesday.

About the Role

Lambda is building the AI Cloud of the future. We are seeking a Staff Engineer to help our development of our Managed Kubernetes platform. Think GKE, but purpose-built for AI workloads and running on bare metal. This is a foundational technical leadership role where you will shape the infrastructure that powers the next generation of AI training and inference at scale.

As a Staff Engineer on our Orchestration team, you will collaborate to help drive the technical vision for Lambda's managed orchestration services, including Managed Kubernetes, Managed Slurm on Kubernetes, and higher-level platform services for inference and AIOps. You'll work at the intersection of distributed systems, GPU-accelerated computing, and Cloud Native infrastructure to build systems that are reliable, performant, and elegantly simple for our customers.

This is not a role for someone who just operates Kubernetes; it is a technical leadership role for an engineer who has synthesized the core domains of infrastructure (compute, network, storage, security) and can design holistic solutions across all of them. You'll be working closely with NVIDIA's open-source ecosystem, and partnering with internal teams across the stack to deliver a world-class managed platform.

What You'll Do:

Product Engineering

Drive technical vision for Lambda's Managed Kubernetes bare-metal platform, including control plane scalability, multi-tenancy, cluster lifecycle management, and high availability

Integrate and extend NVIDIA's open-source ecosystem: GPU Operator, Network Operator, DCGM, NCCL, and emerging projects like AICR and Topograph for topology-aware scheduling and placement

Design GPU-aware orchestration systems

Lead development of services that power our managed services

Inform on and help with networking solutions for AI workloads: CNI integration (Cilium, Multus), high-performance fabrics (InfiniBand, RoCE), RDMA, and GPUDirect. You will work closely with our Network team to define and drive requirements

Inform and help with storage architecture requirements for AI workloads. You will partner with Storage teams on what managed K8s, Slurm, and future services need

Build the foundation for Managed Slurm on Kubernetes, enabling traditional HPC workloads to run seamlessly alongside Kubernetes workload

Design higher-level platform services for inference, including model serving infrastructure, autoscaling based on inference load, and multi-model deployment patterns

Design self-healing systems and automation for incident response, root cause analysis, and platform resilience

Lead chaos engineering efforts to validate system behavior under failure conditions at scale

Establish operational excellence for a managed service: upgrade automation, security patching, and zero-downtime maintenance

Cross-Functional Infrastructure Leadership

Serve as the technical bridge between Orchestration and other infrastructure teams (Network, Storage, Security), translating platform requirements into actionable specifications

Drive infrastructure-wide decisions that enable successful managed services. You’re someone who understands what's needed end-to-end, not just at the Kubernetes layer.

Provide input on bare-metal provisioning, network topology, and storage systems to ensure they meet the needs of managed the services being built by the Orchestration organization

Requirements

  • ·10+ years of experience in software engineering, platform engineering, or SRE, with at least 5 years focused on Kubernetes at scale
  • ·Expert-level understanding of Kubernetes internals: API machinery, controllers, schedulers, operators, CRDs, CSI, CNI, and the extension patterns that make Kubernetes powerful
  • ·Holistic infrastructure expertise: you've synthesized knowledge across compute, networking, storage, and security, not just Kubernetes in isolation. You can build solutions that span the full stack.
  • ·Strong software engineering skills in Go (required) and Python; you write production-quality code, not just scripts
  • ·Deep experience with GPU orchestration in Kubernetes: NVIDIA GPU Operator, device plugins, DCGM, MIG, time-slicing, and GPU-aware scheduling. Familiarity with NVIDIA Network Operator and GPUDirect is strongly preferred.

Benefits

  • ·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

How to apply

  1. 1Check the flexibility label above, hybrid, matches where you plan to live and work.
  2. 2Tailor your CV to the role at Lambda, mentioning your remote working experience.
  3. 3Apply directly on the employer's careers page using the button below. Nomaders never handles your application.

Found 5d ago. Last checked 23 Sept. Always confirm the details on the original posting, salary and location can change after publication.

Listing sourced from Company boards.

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