Role at a glance
- Salary
- $272K – $431.3K/yr
- Location
- 5 Locations, California, United States
- Work arrangement
- On-site
- Employment
- Full-time
- Experience
- 15+ years in systems software and/or networking
- Education
- MS, PhD or equivalent experience in Computer Science, Computer Engineering, Electrical Engineering, or a related field.
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Role Summary
The Principal Architect leads the research agenda and architectural direction for NVIDIA AI communication systems across GPUs, DPUs, NICs, network switches, and heterogeneous storage. The role develops systems-level software and translates research in distributed AI communication, networking, and hardware-software co-design into production AI stacks.
What You'll Do
- Set the long-term technical vision for distributed AI communication systems, including GPU-to-GPU, GPU-to-storage, and cross-node data...
- Conduct original research and prototype networking solutions using RDMA, NVLink, and GPUDirect.
- Drive hardware-software co-optimization across GPUs, DPUs, NICs, and network switches.
- Investigate communication-runtime bottlenecks for large-scale AI workloads, including KV cache transfer, disaggregated prefill/decode,...
- Integrate networking capabilities into AI serving stacks such as vLLM, SGLang, and TensorRT-LLM.
- Publish findings, represent NVIDIA in industry forums and standards bodies, and mentor senior engineers.
Generated from the employer's posting. Verify important details before applying.
View full postingQualifications
15+ years in systems software and/or networking; deep expertise in high-performance networking, communication libraries, GPU accelerated systems, computer architecture, memory hierarchies, DMA engines, OS-level networking, and ML systems concepts; proficiency in C, C++, Rust, and Python; track record of defining and delivering complex, cross-team technical initiatives from research concept to production.
Required
- High-performance networking including InfiniBand, RoCE, RDMA, and NVLink
- Communication libraries including NIXL, NCCL, UCX, MPI, and NVSHMEM
- GPU accelerated systems
- Computer architecture, memory hierarchies, DMA engines, and OS-level networking
- ML systems concepts including transformer architectures, KV cache mechanics, model parallelism, and distributed training and inference...
- Proficiency in C, C++, Rust, and Python
- Track record of defining and delivering complex, cross-team technical initiatives from research concept to production
Preferred
- Knowledge of ML inference frameworks including vLLM, SGLang, and TensorRT-LLM
- CUDA programming and NVIDIA GPU architecture expertise
- Experience influencing product strategy and technical roadmap at a senior level
- Major open-source contributions
Original job description
Content provided by the employer
Original job description
Content provided by the employer
An applied research team within NVIDIA’s Networking Systems & Software Architecture group is solving some of AI’s hardest infrastructure problems. The team builds systems-level software that moves data between GPUs, nodes, and storage at the speed modern AI demands—spanning low-level transport optimization, hardware-software co-design, and communication frameworks that plug directly into production AI stacks. The team's charter expands into emerging domains including quantum computing interconnects.
This Principal Architect role leads the research agenda and architectural direction for how NVIDIA’s AI systems communicate at scale—across GPUs, DPUs, NICs, and heterogeneous storage. It requires someone who defines project scope from scratch, publishes original work, and translates research breakthroughs into production-grade software that ships industry-wide!
What you will be doing:
Setting the long-term technical vision for distributed AI communication systems—GPU-to-GPU, GPU-to-storage, and cross-node data movement.
Conducting original research and prototyping next-generation networking solutions over RDMA, NVLink, and GPUDirect.
Driving hardware-software co-optimization with GPU, DPU, NIC, and network switch. Investigating fundamental bottlenecks in communication runtimes for large-scale AI workloads (KV cache transfer, disaggregated prefill/decode, model parallelism).
Integrating networking capabilities into AI serving stacks such as vLLM, SGLang, and TensorRT-LLM.
Publishing findings, representing NVIDIA in industry forums and standards bodies, and mentoring senior engineers across the organization.
What we need to see:
15+ years in systems software and/or networking with deep expertise in high-performance networking (InfiniBand, RoCE, RDMA, NVLink), communication libraries (e.g. NIXL, NCCL, UCX, MPI, NVSHMEM), and GPU accelerated systems, with track record of defining and delivering complex, cross-team technical initiatives from research concept to production.
MS, PhD or equivalent experience in Computer Science, Computer Engineering, Electrical Engineering, or a related field.
Deep understanding of computer architecture, memory hierarchies, DMA engines, and OS-level networking.
Understanding of ML systems concepts—transformer architectures, KV cache mechanics, model parallelism, or distributed training and inference patterns.
Proficiency in programming languages such as C, C++, Rust and Python.
Ways to stand out from the crowd:
Knowledge of ML inference frameworks (vLLM, SGLang, TensorRT-LLM) and their communication requirements.
CUDA programming and NVIDIA GPU architecture expertise.
Proved experience influencing product strategy and technical roadmap at a senior level.
Major open-source contributions.
With competitive salaries and a comprehensive benefits package, NVIDIA is widely regarded as one of the most desirable technology employers in the world. Our teams are composed of some of the most forward‑thinking and driven engineers in the industry, and we continue to grow rapidly. If you are a senior data engineer passionate about building large‑scale, high‑impact data platforms, we’d love 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 272,000 USD - 431,250 USD.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 a diverse 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.
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.