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Senior AI Performance and Efficiency Engineer

LinkedIn NVIDIA Seattle, WA
Mid-Senior level Posted April 2, 2026 Job link
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Requirements
  • BS or similar background in Computer Science or related area (or equivalent experience)
  • Minimum 5+ years of experience designing and operating large scale compute infrastructure
  • Strong understanding of modern ML techniques and tools
  • Experience investigating, and resolving, training & inference performance end to end
  • Debugging and optimization experience with NSight Systems and NSight Compute
  • Experience with debugging large-scale distributed training using NCCL
  • Proficiency in programming & scripting languages such as Python, Go, Bash, as well as familiarity with cloud computing platforms (e.g., AWS, GCP, Azure) in addition to experience with parallel computing frameworks and paradigms.
  • Dedication to ongoing learning and staying updated on new technologies and innovative methods in the AI/ML infrastructure sector.
  • Excellent communication and collaboration skills, with the ability to work effectively with teams and individuals of different backgrounds
  • Background with NVIDIA GPUs, CUDA Programming, NCCL and MLPerf benchmarking
  • Experience with Machine Learning and Deep Learning concepts, algorithms and models
  • Familiarity with InfiniBand with IBOP and RDMA
  • Understanding of fast, distributed storage systems like Lustre and GPFS for AI/HPC workloads
  • Familiarity with deep learning frameworks like PyTorch and TensorFlow
Preferred Skills
  • Background with NVIDIA GPUs, CUDA Programming, NCCL and MLPerf benchmarking
  • Experience with Machine Learning and Deep Learning concepts, algorithms and models
  • Familiarity with InfiniBand with IBOP and RDMA
  • Understanding of fast, distributed storage systems like Lustre and GPFS for AI/HPC workloads
  • Familiarity with deep learning frameworks like PyTorch and TensorFlow
Education
  • (Not required) – BS or similar background in Computer Science or related area (or equivalent experience)