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Listed location: US, CA, Santa Clara | US, TX, Austin | US, OR, Remote | US, WA, Remote | US, WA, Redmond
Work arrangement: remote. A remote label does not confirm worldwide eligibility or visa sponsorship.
Read the employer’s description for qualifications, compensation and work eligibility. Confirm the position is still open on the application page.
Job description supplied by NVIDIA; category and skill labels may be inferred. How our listings work · Report a problem
Job Description
Joining NVIDIA's DGX Cloud AI Efficiency Team means contributing to the infrastructure that powers our innovative AI research. This team focuses on developing tools for optimizing efficiency and resiliency of AI workloads - pre-training, post-training, inference. Our objective is to deliver a stable, scalable environment for AI researchers, providing them with the necessary resources and scale to foster innovation. We are seeking an AI infrastructure software engineer to join our team. You'll be instrumental in designing, building, and maintaining AI infrastructure that enable large-scale AI training and inferencing. The responsibilities include implementing software and systems engineering practices to ensure high efficiency and availability of AI systems.
As a senior DGX Cloud AI Infrastructure software engineer at NVIDIA, you will have the opportunity to work on innovative technologies that power the future of AI and data science and be part of a dynamic, diverse, and supportive team that values learning and growth. The role provides the autonomy to work on meaningful projects with the support and mentorship needed to succeed, and contributes to a culture of blameless postmortems, iterative improvement, and risk-taking. If you are seeking an exciting and rewarding career that makes a difference, we invite you to apply now!
What you’ll be doing:
Develop infrastructure software and tools for large-scale pre-training, post-training, and inference.
Develop and optimize tools and libraries to improve infrastructure efficiency and resiliency.
Co-design and implement APIs for integration with NVIDIA's resiliency stacks.
Enhance infrastructure and products underpinning NVIDIA's AI platforms.
Define meaningful and actionable reliability metrics to track and improve system and service reliability.
Skilled in problem-solving, root cause analysis, and optimization.
Root cause and analyze and triage failures from the application level to the hardware level
What we need to see:
Minimum of 8+ years of experience in developing software infrastructure for large scale AI systems.
Bachelor's degree or higher in Computer Science or a related technical field (or equivalent experience).
Strong debugging skills and experience in analyzing and triaging AI applications from the application level to the hardware level.
Experience with observability platforms for monitoring and logging (e.g., ELK, Prometheus, Loki).
Proven track record in building and scaling large-scale distributed systems.
Experience with AI training and inferencing infrastructure services.
Proficiency in programming languages such as Python, C/C++, script languages
Experience in quality software engineering practices, including test development, defensive programming, version control, and CI.
Excellent communication and collaboration skills, and a culture of diversity, intellectual curiosity, problem solving, and openness are essential.
Ways to stand out from the crowd:
Background in working with the large scale clusters
Experience in defining and building observability and telemetry software stack
Experience with RDMA software stack (NCCL, IB verbs, ucx, libfabrics)
Experience and root cause analysis of failures and datacenter scale
Good understanding on DL frameworks internal PyTorch, TensorFlow, JAX, and Ray
NVIDIA leads the way in groundbreaking developments in Artificial Intelligence, High-Performance Computing, and Visualization. The GPU, our invention, serves as the visual cortex of modern computers and is at the heart of our products and services. Our work opens up new universes to explore, enables amazing creativity and discovery, and powers what were once science fiction inventions, from artificial intelligence to autonomous cars. NVIDIA is looking for exceptional people like you to help us accelerate the next wave of artificial intelligence.
Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. The base salary range is 184,000 USD - 287,500 USD for Level 4, and 224,000 USD - 356,500 USD for Level 5.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.Skills mentioned
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Frequently asked questions
Is the Senior DGX Cloud AI Infrastructure Software Engineer position at NVIDIA remote?
Yes. The Senior DGX Cloud AI Infrastructure Software Engineer role at NVIDIA is a remote position. Country eligibility is not specified here; check the employer listing.
What type of employment is the Senior DGX Cloud AI Infrastructure Software Engineer role?
NVIDIA is hiring for a full-time Senior DGX Cloud AI Infrastructure Software Engineer position.
Which skills are mentioned for the Senior DGX Cloud AI Infrastructure Software Engineer job at NVIDIA?
Detected skill labels include Python, PyTorch, TensorFlow, JAX, Ray, Distributed Systems, GPU. Check the employer description to distinguish required skills from preferred experience.
How do I apply for the Senior DGX Cloud AI Infrastructure Software Engineer position at NVIDIA?
You can apply for the Senior DGX Cloud AI Infrastructure Software Engineer role directly through NVIDIA's official application link provided on this page.
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