Level

NVIDIA

Senior Production Engineer - DGX Cloud

AI in this role

vllmpytorch

NVIDIA DGX Cloud delivers AI services and endpoints for research and production workloads. We are looking for a Senior Production Engineer to build software and automation that make those services reliable, scalable, and safe to operate. The Production Engineering team works on large-scale distributed systems spanning internal and external model endpoints; regional control plane services that orchestrate workloads and route requests; and the GPU/CPU compute infrastructure where inference and agentic workloads run. Our work spans Kubernetes clusters across AWS, Azure, Google Cloud, other partner cloud environments, and on-premises deployments.


What you’ll be doing:

  • Build and operate production software, automation, and tooling for control plane services, model deployments, and inference and agentic workloads across DGX Cloud environments.
  • Improve the reliability of inference and agentic platforms and services, including NVIDIA Cloud Functions, SGLang- and vLLM-based endpoints, and inference services built with NVIDIA Dynamo, through health validation, safer rollouts, observability, and recovery.
  • Improve endpoint availability, inference routing, capacity management, and service health to maintain predictable performance as workloads and demand change.
  • Use infrastructure as code and GitOps to deploy, configure, validate, upgrade, and recover services consistently across environments.
  • Build workflows for service enablement, model releases, handoff, deprecation, and ongoing operations; replace repeatable manual work with reliable automation.
  • Define and instrument SLIs and SLOs for inference and control plane services, including availability and latency, use error budgets to guide reliability improvements, and make production health visible to partner teams.
  • Participate in on-call and incident response, troubleshoot failures across routing, model runtimes, software, and infrastructure, and turn recurring issues into automation and durable fixes.
  • Collaborate with model, platform, storage, networking, security, and GPU infrastructure teams to design and operate services safely at scale.

What we need to see:

  • 8+ years of experience building or operating production services and large-scale distributed systems, including hands-on automation.
  • Strong programming skills in Python, Go, or a comparable language, with experience developing tools for production operations.
  • Experience with infrastructure as code, configuration management, or GitOps, and with building automation for repeatable service deployments and changes.
  • Strong knowledge of Linux, Kubernetes, containers, cloud infrastructure, distributed systems, and networking fundamentals; ability to diagnose failures in production.
  • Understanding of Production Engineering principles, including SLIs, SLOs, error budgets, incident response, and reducing operational toil.
  • Experience instrumenting services and using metrics, logs, and traces to understand system behavior and improve reliability.
  • Clear technical communication and ability to work across engineering teams.
  • BS/MS in Computer Science or equivalent practical experience.

Ways to stand out from the crowd:

  • Familiarity with technologies such as vLLM, SGLang, PyTorch, TensorRT-LLM, NVIDIA Dynamo, CUDA, or NCCL, and with GPU performance analysis.
  • Experience building Kubernetes operators, controllers, workload orchestration services, fleet management systems, or self-healing automation.
  • Experience with Terraform, Argo CD, CI/CD, policy validation, or safe deployment and rollback systems.
  • Background with developing with AI tools and agents.
  • Experience with production AI inference or agentic workloads, including debugging issues across models, runtimes, Kubernetes, and hardware.

NVIDIA is leading the way in groundbreaking developments in Artificial Intelligence, High-Performance Computing and Visualization. The GPU, our invention, serves as the visual cortex of modern computers and is at the heart of our products and services. We have some of the most forward-thinking and hard-working people on the planet working for us. If you're creative, hard-working and self-motivated, we want to hear from you!

How we rate this

Senior Production Engineer - DGX Cloud at NVIDIA rates 87 out of 100 for how much of the daily work is AI. That makes it Builds AI (AI Level 4 of 4). The level is about AI in the job, not seniority.

Classification

Builds AI. The job is building AI systems.

  1. ●●●● Builds AI80 to 100
  2. ●●●○ Works on AI60 to 79
  3. ●●○○ Uses AI40 to 59
  4. ●○○○ Little AI0 to 39

Levels come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

vLLMPyTorch

Questions you could be asked

  1. What's a project where you used vLLM hands-on?
  2. Walk me through how you've used PyTorch in your day-to-day work.
  3. How would you decide a model or AI system is ready to ship?
  4. Tell me about a time a model underperformed in production. How did you find out, and what did you change?

Adapt your resume

  • List these exact terms on your resume: vLLM and PyTorch. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.

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