Senior GPU System Architect

NVIDIA Gruppe

Bengaluru

On-site

INR 9,578,544 - 14,367,816

Full time

14 days+

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Job summary

NVIDIA Gruppe is looking for a GPU System Architect based in Bengaluru, India. This role involves designing multi-GPU scale-up and scale-out systems for cutting-edge datacenter platforms aimed at AI and HPC. The successful candidate will need to align GPU compute with high-bandwidth memory and communication subsystems while collaborating closely with hardware and software teams.

The ideal candidate will have a strong background in system design with over 8 years of experience and relevant qualifications in Electrical Engineering or Computer Engineering.

Qualifications

  • 8 years of experience in system design or ASIC/SoC architecture.
  • Deep understanding of NVLink, Ethernet, InfiniBand, CXL and PCIe protocols.
  • Experience with RDMA/RoCE or InfiniBand transport architectures.

Responsibilities

  • Architect multi-GPU system topologies for AI and HPC.
  • Define and evaluate architectures for high-speed interconnects.
  • Collaborate to architect RDMA-capable hardware for AI workloads.

Skills

System architecture design
Hands-on hardware-software co-design
Analytical skills
Collaboration skills

Education

BS/MS/PhD in Electrical Engineering or Computer Engineering

Tools

Python
SystemC

Job description

We are seeking a GPU System Architect who will architect and design multi‑GPU scale‑up and scale‑out systems for next‑generation datacenter platforms for AI and HPC. The architect in this role will explore and define system architectures that tightly couple GPU compute, high‑bandwidth memory, in‑package interconnects and GPU‑to‑GPU communication fabric subsystems to deliver industry‑leading AI performance, scalability and resilience. The ideal candidate combines deep hands‑on system‑level fabric/networking architecture experience and practical hardware‑software co‑design expertise.

What you will be doing:
  • Architect multi‑GPU system topologies for scale‑up and scale‑out configurations, balancing AI throughput, scalability, and resilience.
  • Define, modify and evaluate future architectures for high‑speed interconnects such as NVLink and Ethernet co‑designed with the GPU memory system.
  • Collaborate with other teams to architect RDMA‑capable hardware and define transport layer optimizations for GPU‑based large‑scale AI workload deployments.
  • Use and modify system models, perform simulations and bottleneck analyses to guide design trade‑offs.
  • Work with GPU ASIC, compiler, library and software stack teams to enable efficient hardware‑software co‑design across compute, memory, and communication layers.
  • Contribute to interposer, package, PCB and switch co‑design for novel high‑density multi‑die, multi‑package, multi‑node rack‑scale systems consisting of hundreds of GPUs.
What we need to see:
  • BS/MS/PhD in Electrical Engineering, Computer Engineering, or equivalent area.
  • 8 years or more of relevant experience in system design and/or ASIC/SoC architecture for GPU, CPU or networking products.
  • Deep understanding of communication interconnect protocols such as NVLink, Ethernet, InfiniBand, CXL and PCIe.
  • Experience with RDMA/RoCE or InfiniBand transport offload architectures.
  • Proven ability to architect multi‑GPU/multi‑CPU topologies, with awareness of bandwidth scaling, NUMA, memory models, coherency and resilience.
  • Experience with hardware‑software interaction, drivers and runtimes, and performance tuning for modern distributed computing systems.
  • Strong analytical and system modeling skills (Python, SystemC, or similar).
  • Excellent cross‑functional collaboration skills with silicon, packaging, board, and software teams.
Ways to stand out from the crowd:
  • Background in system design for AI and HPC.
  • Experience with NICs or DPU architecture and other transport offload engines.
  • Expertise in chiplet interconnect architectures or multi‑node fabrics and protocols for distributed computing.
  • Hands‑on experience with interposer or 2.5D/3D package co‑design.
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