Senior Embedded Software Engineer
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Develop and optimize GPU kernel libraries and performance-critical software for AI and deep learning workloads at NVIDIA. You'll contribute to production systems like cuDNN and work on GPU-accelerated primitives, attention kernels, and LLM inference infrastructure. This internship requires currently pursuing a Bachelor's, Master's, or PhD in Computer Science or related field, with strong C/C++ and Python skills, CUDA experience, and familiarity with deep learning frameworks like PyTorch or JAX.
Written from this posting by Neural Jobs AI. The full description is below.
NVIDIA is looking for outstanding Software Engineer Interns to help develop groundbreaking technologies for AI and deep learning kernel libraries. Our team builds core software that accelerates high-impact AI workloads on NVIDIA GPUs, with a strong focus on deep learning primitives, kernel libraries, and performance-critical GPU software. As an intern on the team, you will contribute to the design, development, optimization, and delivery of software that powers NVIDIA's AI platform.
This internship is centered on foundational library engineering, with opportunities to work on low-level kernels, performance primitives, and efficient implementations for modern AI and deep learning workloads. You may contribute to GPU-accelerated deep learning primitives, attention kernel implementations, runtime components, code generation systems, and other performance-critical infrastructure for large language models and advanced AI applications. You will collaborate with world-class engineers across deep learning software, compilers, GPU architecture, and open-source inference ecosystems, and your work can directly impact the performance of real-world workloads at scale.
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NVIDIA builds the GPUs and the CUDA software stack that most modern AI is trained and served on, along with its own research in graphics, robotics and foundation models.
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