Senior AI Infrastructure Engineer, Physical Infrastructure

AI Chopping Block

Costa Mesa, Northern (CA, KY)

Hybrid

USD 166,000 - 220,000

Full time

6 days ago
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Job summary

Anduril Industries is seeking a Senior AI Infrastructure Engineer to own the stability and scalability of large-scale GPU training. You will drive automation and optimize Kubernetes/Run:AI for research and product teams.

This role requires 10+ years in HPC/datacenter infra, hands-on GPU hardware experience, and eligibility for a U.S. Top Secret clearance. You’ll build self-healing systems and improve interconnects to support massive-scale compute.

Qualifications

  • 10+ years in hands-on infrastructure, HPC, or datacenter engineering supporting GPU compute at scale.
  • Experience with H200/B200/B300 GPUs: bring up, cabling, firmware/driver management.
  • Experience with high-performance interconnects (NVLink, InfiniBand, RoCE, Spectrum-X) in clusters of GPUs.
  • Experience with high-performance parallel storage (VAST, DDN, Weka, Lustre).
  • Kubernetes required; Run:AI or similar GPU scheduling experience preferred.
  • Strong automation background with repeatable deployment pipelines.
  • Able to lift/move 50+ lbs and perform physical datacenter work; U.S. Top Secret clearance eligible.

Responsibilities

  • Rack, stack, cable, and bring up GPU compute including topology, power, cooling, firmware, and burn-in validation.
  • Build and tune interconnect fabric (NVLink, InfiniBand, RoCE, Spectrum-X) for hundreds of GPUs.
  • Integrate high-performance parallel storage to sustain throughput for distributed training and datasets.
  • Automate cluster deployment and configuration end to end, IaC for bring up and driver management.
  • Operate and extend Kubernetes/Run:AI for GPU scheduling and multi-tenant isolation.
  • Own fleet health: monitoring, alerting, and rapid triage of hardware and network faults.
  • Onboard engineers/researchers and assist with workloads when infrastructure is the bottleneck.
  • Partner with product teams to translate compute needs into platform capability.

Skills

GPU compute at scale
Kubernetes
Automation pipelines
Physical datacenter work

Tools

H200/B200/B300 GPUs
NVLink/InfiniBand/RoCE
VAST, DDN, Weka, Lustre
Kubernetes Run:AI

Job description

Anduril Industries is a defense technology company with a mission to transform U.S. and allied military capabilities with advanced technology. By bringing the expertise, technology, and business model of the 21st century's most innovative companies to the defense industry, Anduril is changing how military systems are designed, built and sold. Anduril's family of systems is powered by Lattice OS, an AI-powered operating system that turns thousands of data streams into a realtime, 3D command and control center. As the world enters an era of strategic competition, Anduril is committed to bringing cutting-edge autonomy, AI, computer vision, sensor fusion, and networking technology to the military in months, not years.

ABOUT THE TEAM

CorpTech Infrastructure Engineering builds and operates the foundational infrastructure that powers Anduril at large. We give engineers, researchers, and product teams across the company a place to deploy fast, scalable infrastructure without having to become infrastructure experts themselves. As Anduril's AI and autonomy ambitions grow, our team is responsible for delivering the next generation of compute, networking, and storage capabilities that make cutting edge model training and inference possible company wide.

ABOUT THE JOB

We’re looking for a Senior AI Infrastructure Engineer to lead the vision, execution, and long-term stability of how Anduril trains with GPUs at scale. In this role, you will take absolute ownership of cluster robustness, ensuring our high-performance GPU systems are highly available, fault-tolerant, and resilient for ML platform and research teams company-wide. This is a highly hands-on role where your primary focus is logical stability and automated resilience—building self-healing mechanisms to proactively detect and isolate hardware faults, tuning NCCL and high-speed networking, and optimizing Kubernetes, Run:AI, and Ray scheduling. By replacing manual triage with automated deployment tooling and deep observability, you will ensure our massive-scale training infrastructure runs seamlessly and scales without linear headcount growth.

WHAT YOU'LL DO
  • Rack, stack, cable, and bring up GPU compute (H200/B200/B300, NVL72) including physical topology, power, cooling, firmware/BIOS, and burn in validation.
  • Build and tune the interconnect fabric (NVLink, InfiniBand, RoCE, Spectrum-X) connecting hundreds of GPUs into low latency training and inference clusters.
  • Integrate high performance parallel storage (VAST, DDN, Weka) to sustain the throughput demanded by distributed training and terabyte scale multi modal datasets across Anduril's programs.
  • Automate cluster deployment and configuration end to end, including infrastructure as code for bring up, firmware/driver management, and fabric config, so new capacity comes online with minimal manual work.
  • Operate and extend our Kubernetes/Run:AI environment for GPU scheduling, quota management, and multi tenant workload isolation across research and engineering teams company wide.
  • Own fleet health: monitoring, alerting, and rapid triage of hardware and network faults (bad transceivers, GPU Xid errors, NCCL/collective failures, RoCE congestion).
  • Onboard engineers and researchers onto the platform and act as their escalation point, working directly alongside them to debug, train, and optimize their workloads whenever infrastructure, not the model, is the bottleneck.
  • Partner with product facing teams across Anduril to understand emerging compute needs and translate them into platform capability.
REQUIRED QUALIFICATIONS
  • 10+ years in a hands on infrastructure, HPC, or datacenter engineering role supporting GPU compute at scale.
  • Hands on experience with H200/B200/B300 (or comparable) GPU systems: bring up, cabling, firmware/driver management.
  • Experience with high performance interconnects (NVLink, InfiniBand, RoCE, Spectrum-X) in clusters of hundreds of GPUs.
  • Experience with high performance parallel storage (VAST, DDN, Weka, Lustre, or similar).
  • Kubernetes required; Run:ai or similar GPU scheduling/orchestration experience strongly preferred.
  • Strong automation background. You build repeatable, automated deployment pipelines rather than manual processes.
  • Able to lift/move 50+ lbs and perform physical datacenter work (rack/stack/cable/troubleshoot).
  • Eligible to obtain and maintain an active U.S. Top Secret clearance.
PREFERRED QUALIFICATIONS
  • Experience with NVIDIA NVL72 rack scale systems.
  • Experience supporting LLM token serving/inference infrastructure alongside training clusters.
  • Network fabric tuning experience (congestion control, adaptive routing, QoS) for RoCE/InfiniBand at scale.
  • Familiarity with GPU/network observability tooling (DCGM, fabric telemetry) and automated fault detection.
  • Experience supporting infrastructure as a shared platform serving multiple internal customer teams with differing requirements.
US Salary Range

$166,000 - $220,000 USD

Benefits

Our comprehensive, competitive benefits package (available at little to no cost to employees) ensures you’re supported in health, recovery, and whatever comes next.

By submitting your application, you consent to Anduril Industries using a third-party service provider to conduct pre-employment risk, integrity, and due diligence screening and assessing potential risks as part of your application process. This third-party service provider provides risk-intelligence services that may include analysis of sanctions and watchlists, adverse media, public-record information, and other lawful open-source or commercial data sources. This third-party service provider does not act as a consumer reporting agency. Use of this provider helps to ensure compliance with applicable laws and protect technology, intellectual property, and organizational security.

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