We are seeking a Senior AI/ML Performance and Efficiency Engineer, GPU Clusters at NVIDIA to join our AI Efficiency efforts. As an Engineer, you will have a pivotal role in enhancing efficiency for our researchers by implementing progressions throughout the entire stack. Your main task will revolve around collaborating closely with customers to pinpoint and address infrastructure and application deficiencies, facilitating groundbreaking AI and ML research on GPU Clusters. Together, we can craft potent, effective, and scalable solutions as we mold the future of AI/ML technology!What you will be doing:Collaborate closely with our AI/ML researchers to make their ML models more efficient leading to significant productivity improvements and cost savingsBuild tools, frameworks, and apply ML techniques to detect & analyze efficiency bottlenecks and deliver productivity improvements for our researchersWork with researchers working on a variety of innovative ML workloads across Robotics, Autonomous vehicles, LLM’s, Videos and moreCollaborate across the engineering organizations to deliver efficiency in our usage of hardware, software, and infrastructure Proactively monitor fleet wide utilization patterns, analyze existing inefficiency patterns, or discover new patterns, and deliver scalable solutions to solve themKeep up to date with the most recent developments in AI/ML technologies, frameworks, and successful strategies, and advocate for their integration within the organization.What we need to see:BS or similar background in Computer Science or related area (or equivalent experience) Minimum 5+ years of experience designing and operating large scale compute infrastructureStrong understanding of modern ML techniques and tools Experience investigating, and resolving, training & inference performance end to endDebugging and optimization experience with NSight Systems and NSight ComputeExperience with debugging large-scale distributed training using NCCLProficiency 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 backgroundsWays to stand out from the crowd:Background with NVIDIA GPUs, CUDA Programming, NCCL and MLPerf benchmarkingExperience with Machine Learning and Deep Learning concepts, algorithms and modelsFamiliarity with InfiniBand with IBOP and RDMAUnderstanding of fast, distributed storage systems like Lustre and GPFS for AI/HPC workloadsFamiliarity with deep learning frameworks like PyTorch and TensorFlowNVIDIA offers competitive salaries and a comprehensive benefits package. Our engineering teams are growing rapidly due to outstanding expansion. If you're a passionate and independent engineer with a love for technology, 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.Applications for this job will be accepted at least until March 23, 2026.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.SummaryLocation: US, CA, Santa Clara; US, CA, Remote; US, NY, New York; US, WA, SeattleType: Full time
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