Role at a glance
- Job function
-
Software Engineering & IT Software Engineering
- Salary
- $152K – $287.5K/yr
- Location
- Santa Clara, California, United States
- Work arrangement
- On-site
- Employment
- Full-time
- Experience
- 5+ years of proven experience in related field
- Education
- BS/MS/PhD in Computer Science, Electrical Engineering, or related field (or equivalent experience)
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Role Summary
The Senior Software Engineer will drive integration of the NVIDIA Grove project within Dynamo and across open-source AI frameworks including llm-d, Ray, and PyTorch. The role focuses on production-grade integrations, reference implementations, developer tooling, and reliable operation across distributed training and inference environments.
What You'll Do
- Design and implement end-to-end integrations of Grove with open-source AI frameworks.
- Build and maintain adapters, plugins, operators, and/or runtime components for training and inference stacks.
- Partner with framework owners to upstream changes and contribute patches.
- Develop reference workflows, sample apps, and best-practice guides.
- Optimize performance, scalability, and reliability for distributed training and inference.
- Improve observability and operational readiness for Kubernetes-based deployments.
Generated from the employer's posting. Verify important details before applying.
View full postingQualifications
Hands-on experience integrating with at least one major AI framework or runtime; understanding of AI workloads and distributed systems; practical Kubernetes, container, cloud-native tooling, and software engineering experience in Go, C++ and/or Python; strong collaboration, communication, and documentation skills.
Required
- BS/MS/PhD in Computer Science, Electrical Engineering, or related field (or equivalent experience)
- 5+ years of proven experience in related field
- Hands-on experience integrating with at least one major AI framework/runtime
- Solid understanding of AI workloads
- Experience with distributed systems concepts
- Practical Kubernetes experience
- Familiarity with containers and cloud-native tooling
- Strong software engineering experience in Go, C++ and/or Python
Preferred
- Open-source contributions to Dynamo, PyTorch, Ray, llm-d, Kubernetes ecosystem, or related ML infrastructure projects
- Experience with large-scale model serving, distributed inference, or multi-tenant AI platforms
- Experience building SDKs/APIs or developer tooling that improves integration usability
- Knowledge of GPU performance profiling and optimization (Nsight tools or similar), and/or kernel-level performance tuning
- Experience with reproducibility, packaging, versioning, and compatibility testing across fast-moving dependencies
Original job description
Content provided by the employer
Original job description
Content provided by the employer
We are seeking a Senior Software Engineer to drive integration of the NVIDIA Grove project within Dynamo and across a set of leading open-source AI frameworks. In this role, you will develop production-grade software enabling Grove capabilities to be adopted, scaled, and operated smoothly. In this role, you will build production-grade software that enables seamless adoption, scaling, and operation of Grove capabilities across environments such as Dynamo, llm-d, Ray, PyTorch, and other emerging frameworks in the AI ecosystem. You will collaborate across engineering teams and the open-source community to deliver robust integrations, reference implementations, and developer-focused tooling.
What you'll be doing:
Design and implement end-to-end integrations of Grove with open-source AI frameworks (e.g., Dynamo, llm-d, Ray, PyTorch, and related ecosystem projects).
Build and maintain adapters, plugins, operators, and/or runtime components that enable Grove features to work smoothly across training and inference stacks.
Partner with framework owners to upstream changes, contribute patches, and ensure long-term maintainability of integrations.
Develop reference workflows, sample apps, and best-practice guides that accelerate adoption by users and partners.
Optimize performance, scalability, and reliability for distributed training/inference, including multi-node and multi-GPU environments.
Improve observability and operational readiness (metrics, logging, tracing, debugging tools) for Kubernetes-based deployments.
Participate in technical design reviews, define APIs/contracts, and ensure compatibility across versions of frameworks and dependencies.
Diagnose complex issues spanning containers, networking, scheduling, CUDA/GPU utilization, and framework runtime behavior.
What we need to see:
BS/MS/PhD in Computer Science, Electrical Engineering, or related field (or equivalent experience)
5+ years of proven experience in related field
Hands-on experience integrating with at least one major AI framework/runtime (e.g., PyTorch, Ray, Triton Inference Server ecosystem, distributed runtimes, model serving stacks).
Solid understanding of AI workloads: model development basics, training vs. inference tradeoffs, and performance considerations (throughput/latency, batching, memory).
Experience with distributed systems concepts (RPC, scheduling, fault tolerance, resource management).
Practical Kubernetes experience: deploying and operating services/jobs, Helm/Kustomize, operators/controllers (nice to have), and debugging clusters.
Familiarity with containers and cloud-native tooling (Docker, container registries, CI/CD pipelines).
Strong software engineering experience in Go, C++ and/or Python, with a track record of shipping reliable systems.
Strong interpersonal skills and ability to collaborate across teams and with open-source communities.
Exceptional collaboration, communication, and documentation habits.
Ways to stand out from the crowd:
Open-source contributions to Dynamo, PyTorch, Ray, llm-d, Kubernetes ecosystem, or related ML infrastructure projects.
Experience with large-scale model serving, distributed inference, or multi-tenant AI platforms.
Experience building SDKs/APIs or developer tooling that improves integration usability.
Knowledge of GPU performance profiling and optimization (Nsight tools or similar), and/or kernel-level performance tuning.
Experience with reproducibility, packaging, versioning, and compatibility testing across fast-moving dependencies.
NVIDIA is widely considered to be one of the technology world’s most desirable employers. We have some of the most experienced and hard-working people in the world working for us. Are you creative and autonomous? Do you love a challenge? If so, we want to hear from you
Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. The base salary range is 152,000 USD - 241,500 USD for Level 3, and 184,000 USD - 287,500 USD for Level 4.You will also be eligible for equity and benefits.
This posting is for an existing vacancy.
NVIDIA uses AI tools in its recruiting processes.
NVIDIA is committed to fostering an inclusive work environment and proud to be an equal opportunity employer. As we highly value diversity in our current and future employees, we do not discriminate (including in our hiring and promotion practices) on the basis of race, religion, color, national origin, gender, gender expression, sexual orientation, age, marital status, veteran status, disability status or any other characteristic protected by law.About the company
NVIDIA
Large Enterprise
NVIDIA is a leading technology company renowned for its graphics processing units (GPUs) and innovative computing solutions that enhance visual experiences across multiple platforms, including gaming, scientific research, and artificial intelligence. Founded in 1993, the company has expanded its offerings to include powerful AI frameworks and deep learning platforms, making significant contributions to industries such as gaming, data centers, automotive, and healthcare. NVIDIA's commitment to pushing the boundaries of visual computing continues to drive advancements in both hardware and software, positioning the company at the forefront of emerging technologies and digital transformation.