Senior AI Validation Engineer

Santa Clara, CA, US • Posted 1 hour ago • Updated 1 hour ago
Contract W2
12 Months
No Travel Required
On-site
Depends on Experience
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Artificial Intelligence
  • AI infrastructure validation
  • AI/HPC
  • GPU
  • Quality Assurance

Summary

Role: Senior AI Validation Engineer
Location: Santa Clara, CA (Onsite)
Job Type : Contract -W2

Job Description :
The Candidate will provide AI infrastructure validation services focused on proving cluster readiness, identifying failure modes early, and accelerating root cause isolation before production impact. This role bridges systems, networks, and workload behaviour, and is ideal for a senior engineer who treats validation as an engineering discipline rather than a checklist.

Responsibilities :
• Design and execute validation plans for AI infrastructure spanning compute nodes, GPU communication, fabric health, storage access, orchestration, and workload readiness.
• Run structured bring-up, soak, regression, and qualification tests on new or changed AI cluster environments.
• Reproduce and isolate failures involving distributed training, node instability, communication libraries, container stacks, storage paths, or network transport behavior.
• Build validation coverage for Ethernet and InfiniBand environments, including host readiness and end-to- end workload verification.
• Correlate test failures with system logs, telemetry, firmware state, and application symptoms to accelerate defect isolation.
• Partner with deployment, Linux, network, and platform teams to close validation gaps before operational handoff.
• Create defect signatures, pass-fail criteria, readiness reports, and release recommendations.
• Improve automation for cluster certification, health scoring, and post-change validation.

Required Skills :
• 10+ years in systems validation, performance engineering, QA for infrastructure, or AI/HPC environment certification.
• Strong troubleshooting ability across Linux hosts, GPU systems, network fabrics, containers, and distributed workload behavior.
• Experience designing validation strategies rather than only executing scripted test cases.
• Familiarity with AI workload dependencies such as NCCL, RDMA paths, storage throughput, and multi-node orchestration behavior.
• Ability to distinguish infrastructure defects from workload, framework, or configuration issues.
• Strong scripting and automation capability for test execution and evidence collection.
• Clear written communication for readiness assessments and defect reports.

Preferred Skills :
• Experience validating GPU clusters, large training environments, or pre-production AI factories.
• Familiarity with telemetry analysis, burn-in workflows, and hardware-firmware-software compatibility testing.
• Experience building qualification suites for both deployment gates and steady-state operations.

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: prutx001
  • Position Id: 9070286
  • Posted 1 hour ago
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PK

Pavan Kalva

Recruiter @ Prudent Technologies and Consulting
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