Senior Staff Deployment Automation Engineer

Crusoe

$250K — $300K *
Technical Services
11 - 15 years of experience
Job Overview by Ladders

Qualifications

  • 12+ years of experience in a relevant technical field
  • Bachelor's or Master's degree in Computer Science, Electrical Engineering, or related field
  • Demonstrated ability to build and deploy automated integration testing in AI Cloud environments
  • Strong knowledge of infrastructure technologies including Kubernetes, Docker, and Terraform
  • Proficient in Python and/or Bash scripting for complex automation tasks
  • Familiarity with Linux kernel internals and distributed GPU systems
  • Understanding of networking protocols like RDMA and RoCE.

Responsibilities

  • Own deployment and integration testing automation across Crusoe's AI Cloud Stack
  • Build CI/CD platforms for fast testing and deployment of low-level systems
  • Design and execute validation tests for multi-node scaling and stability
  • Manage Linux configurations with tools such as Gitlab and Ansible
  • Create applications for canary deployments and Blue/Green testing
  • Develop automation frameworks in Python or Go for virtualized environments
  • Leverage tools to create automated test suites for performance validation.

Benefits

  • Competitive compensation and equity packages
  • Paid time off and holidays
  • Comprehensive health, dental & vision insurance
  • Paid parental leave and life insurance
  • 401(k) Retirement plan with company match
  • Professional development and tuition reimbursement
  • Mental health & wellness support
  • Commuter benefits and cell phone stipend
  • Additional perks specific to location.
Full Job Description
About the Role:

As a Senior Staff/Principal Deployment Automation Engineer for the Compute Team, you will be responsible for deployment and testing automation of large-scale, multi-node GPU clusters. You will own the CI/CD infrastructure, including both deployment and integration testing, for a rapidly scaling fleet of virtualized GPU and CPU hosts across our AI Cloud. Your role is critical in ensuring the stability of the low-level infrastructure and enabling teams across our Cloud Infrastructure organization to quickly and reliably release, test, and deploy their artifacts across our datacenters.

San Francisco, Sunnyvale, Bellevue (Onsite)

What You'll Be Working On:
  • Deployment and Integration Testing Ownership: Completely own deployment and integration testing automation for all bare-metal, on-premise systems across Crusoe's AI Cloud Stack.
  • CI/CD Automation and Tooling: Build CI/CD platforms that enable developers to quickly test, iterate, and deploy critical, low-level systems and applications.
  • Multi-Node Scaling Validation: Design and execute large-scale validation tests across multi-node virtualized clusters to ensure linear scaling and stability of GPU workloads.
  • Configuration Management and Observability: Maintain and scale bare-metal Linux configurations using a mix of custom and off the shelf tooling such as Gitlab, Ansible, AWX, osquery, etc.
  • Deployment Orchestration: Create control applications to coordinate canary deployments on live production systems, run Blue/Green testing, and perform automatic rollback where necessary.
  • Cluster Orchestration: Develop and maintain automation frameworks in Python or Go to dynamically provision, configure, and stress-test multi-node virtualized environments.
  • Create automated test suites leveraging tools like fio, stress-ng, and iperf to ensure performance and multi-tenant isolation of CPU and GPU hosts.

What You'll Bring to the Team:
  • Education & Experience: 12+ YOE demonstrated ability to competently and independently perform responsibilities plus Bachelor's or Master's degree in Computer Science, Electrical Engineering, or a related technical field.
  • Experience building and deploying automated integration testing for an AI Cloud Environment, ranging from low-level Linux Systems up to Distributed Control Planes.
  • Working knowledge of the modern infrastructure stack, including Kubernetes, Docker, Terraform, and Postgres.
  • CI/CD & Gitlab: Intimate knowledge of CI/CD pipelines and Gitlab Tooling to enable stable infrastructure releases across multiple datacenters.
  • Configuration Management: Previous experience with at least 1-2 configuration management systems, including Ansible, Puppet, Chef, or SaltStack.
  • Automation & Scripting: Advanced proficiency in Python and/or Bash for automating complex cluster-wide test scenarios.
  • System Internals: Knowledge of Linux kernel internals, specifically PCIe topology, VFIO, and memory management (HugePages, IOMMU).
  • Distributed GPU Ecosystems: Familiarity with NVIDIA (CUDA/NCCL) and/or AMD (ROCm/RCCL) stacks in a multi-node context.
  • Networking Knowledge: Strong understanding of RDMA, RoCE, and InfiniBand protocols and their implementation in virtualized systems.

Bonus Points:
  • Experience with MNNVL (Multi-Node NVLink) or specialized AI fabric architectures.
  • Familiarity with hardware-level debugging tools and performance profilers (e.g., NVIDIA Nsight, AMD Omniperf).
  • Knowledge of containerized orchestration for GPUs (e.g., Kubernetes with specialized device plugins).


Benefits:
  • Competitive compensation and equity packages
  • Restricted Stock Units
  • Paid time off, paid holidays & leave of absence programs
  • Comprehensive health, dental & vision insurance
  • Employer contributions to HSA account
  • Paid parental leave
  • Paid life insurance, short-term and long-term disability
  • Professional development & tuition reimbursement
  • Mental health & wellness support
  • Commuter benefits (parking & transit)
  • Cell phone stipend
  • 401(k) Retirement plan with company match up to 4% of salary
  • Volunteer time off
  • Global travel insurance & emergency assistance
  • Daily meals allowance
  • Additional perks & programs specific to location


Compensation Range

Compensation will be paid in the range of up to $250,000 -$300,000 + Bonus. Restricted Stock Units are included in all offers. Compensation to be determined by the applicant's knowledge, education, and abilities, as well as internal equity and alignment with market data.

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