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Full-time
bachelor degree, postgraduate degree
Competitive Salaries, Generous Benefits Package
Posted 18d ago
~40 hrs/week
Responsibilities
Lead the development of an efficient on-device AI software stack for RTX and DGX systems, focusing on high-performance local inference and agentic workloads. Drive technical direction, mentor engineers, and collaborate cross-functionally to optimize AI models and inference runtimes.
Requirements
Requires 5+ years of industry experience with 2+ years of engineering leadership and a degree in Computer Science or a related field. Must possess a strong technical foundation in C++, AI inference pipelines, and deep learning frameworks.
Full job description
NVIDIA has continuously reinvented itself for over two decades. The invention of the GPU in 1999 propelledthe growth of PC gaming, redefined modern computer graphics, and revolutionized parallel computing. More recently, GPU deep learning has ignited modern AI, positioning NVIDIA as a leading AI computing company.There is a growing focus on delivering AI models locally, closer to the source of data. This reduces latency, improves real-time processing, and addresses privacy concerns by minimizing data transfer to centralized servers. As technology advances, client-side AI (local execution) will play a key role in crafting digital experiences.
The Local AI team is seeking a System Software Manager to lead development of an efficient on-device AI software stack. The software stack will support RTX, RTX Pro, and DGX-class systems. This role focuses on high-performance local inference, agentic workloads, low latency, efficient memory use, scalable infrastructure, practical deployment on resource-constrained platforms, and delivering a streamlined out-of-box experience for developers and end users.
What you'll be doing:
Lead and grow a team building the on-device AI inference platform for RTX, RTX Pro, and DGX GPUs, with accountability for execution, technical direction, delivery quality, and roadmap alignment.
Drive cross-functional alignment with NVIDIA’s software, research, architecture, and product teams, along with industry partners and open-source communities, to build strategy and strengthen the AI ecosystem across RTX and DGX platforms.
Provide technical leadership for the architecture and evolution of modern inference runtimes and execution stacks across frameworks such as Llama.cpp, vLLM, PyTorch, WinML, DXCGC, and TensorRT-RTX, spanning workloads including LLMs, vision-language models, TTS, ASR, and diffusion models.
Mentor engineers, develop technical leaders, and foster a high-performance team culture centred on innovation, collaboration, and operational excellence.
Coordinate end-to-end optimization of AI models, data pipelines, and inference runtimes to improve performance across current and next-generation GPU architectures.
Drive adoption of model optimization techniques such as quantization, pruning, sparsity, and distillation to enable efficient deployment of large models on local and edge devices.
Establish team processes for system-level debugging, performance optimization, and performance-accuracy trade-off analysis, including infrastructure for performance and accuracy sweeps, gap analysis, and production-readiness improvements.
What we need to see:
5+ overall years of industry experience and 2+ years of engineering leadership experience, combined with a Bachelor’s, Master’s, or PhD in Computer Science, Software Engineering, Mathematics, or a related field.
Proven experience leading high-performing engineering teams in systems software, AI infrastructure, inference runtimes, or related domains.
Strong technical foundation in C++ software development, debugging, data structures, algorithms, and machine learning systems.
Extensive background in AI inference pipelines and Deep Learning frameworks like Llama.cpp, vLLM, PyTorch, WinML, DXCGC, and TensorRT.
Deep understanding of inference backends and runtime internals, including scheduling, memory management, KV-cache behavior, graph execution, quantization, and hardware-aware optimization.
Strong analytical and problem-solving skills, with the ability to balance technical depth, execution speed, and organizational priorities in a fast-paced environment.
Excellent written and verbal communication skills, with proven ability to collaborate across engineering, product, research, and executive collaborators.
Ways to stand out from the crowd :
Strong understanding of modern machine learning, deep neural networks, and generative AI, along with contributions to notable open-source projects.
Demonstrated success building teams, setting technical vision, and scaling execution through periods of rapid growth.
Track record of delivering end-to-end products with geographically distributed teams in multinational product organizations.
Experience in lower-level systems or GPU programming, including CUDA and high-performance systems development.
Contributions to open-source inference runtimes, model tooling, or performance infrastructure as well as practical experience working with frameworks and APIs including Llama.cpp, PyTorch, TensorRT, Vulkan, DirectX, and vLLM.
We're a top employer known for innovation and growth. We are an equal-opportunity employer and value diversity at our company. With competitive salaries and a generous benefits package, we are widely considered to be one of the world’s most desirable employers of technology. We have some of the most forward-thinking and hardworking people in the world working for us and, due to unprecedented growth, our best-in-class engineering teams are rapidly growing. If you're a creative and autonomous engineer with a real passion for technology, we would like to hear from you.
Related keywords
Local AIInference RuntimesRTXDGXLLMsVision-Language ModelsTTSASRDiffusion ModelsQuantizationPruningSparsityDistillationKV-cacheGraph ExecutionWinML
Since its founding in 1993, NVIDIA (NASDAQ: NVDA) has been a pioneer in accelerated computing. The company’s invention of the GPU in 1999 sparked the growth of the PC gaming market, redefined computer graphics, ignited the era of modern AI and is fueling the creation of the metaverse. NVIDIA is now a full-stack computing company with data-center-scale offerings that are reshaping industry.
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How many Science & Research jobs are open in pune, India right now?
There are currently 165 open science & research positions in pune, India listed on Clera. New openings are added daily as companies post roles.
Which companies are hiring for Science & Research roles in pune, India?
Companies currently hiring include Accenture, NVIDIA, Lattice Semiconductor, Qualys, NXP Semiconductors, among others. Browse the listings above to see every active employer.
Are there remote or hybrid Science & Research jobs in pune, India?
Yes — 36 of the 165 open science & research positions offer remote or hybrid work (7 remote, 29 hybrid).
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