System Software Engineer - Local AI

NVIDIA

Pune District

On-site

INR 1,500,000 - 2,400,000

Full time

14 days+
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Benefits offered by this job

Equal opportunity employer
Generous benefits package
Competitive salaries

Job summary

NVIDIA Pune is seeking a Systems Software Engineer to build efficient on-device AI software for RTX and DGX-class systems. The role focuses on high‑performance local inference, low latency, and memory‑efficient execution on resource‑constrained platforms.

You will collaborate with software, research, architecture and product teams to optimize inference stacks across Llama.cpp, vLLM, PyTorch, WinML, DXCGC and TensorRT, and apply quantization and pruning for edge deployment.

Qualifications

  • 4+ years of experience in C++ software development for AI workloads.
  • Strong knowledge of data structures, algorithms, and ML concepts.
  • Experience with AI inference pipelines and frameworks (Llama.cpp, vLLM, PyTorch, TensorRT).
  • Interest in inference backends and runtime internals (scheduling, memory, KV-cache behavior, graph execution, quantization).

Responsibilities

  • Collaborate with cross‑functional teams to align AI on-device goals.
  • Build and optimize local AI inference stack for RTX and DGX-class systems.
  • Develop inference runtimes and execution stacks across frameworks.
  • Perform end-to-end model optimization for latency and memory efficiency.
  • Drive performance improvements and production readiness.

Skills

C++ programming
Machine learning / DL
Performance optimization
Analytical problem solving
Effective communication

Education

Bachelor's degree in CS / Math / related field

Tools

Llama.cpp
vLLM
PyTorch
TensorRT
DirectX / Vulkan
WinML

Job description

NVIDIA has continuously reinvented itself for over two decades. The invention of the GPU in 1999 fueled the 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 an increasing 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 shaping digital experiences. The LocalAI team is seeking a Systems Software Engineer to build efficient on-device AI software for RTX and DGX-class systems. This role focuses on high-performance local inference, low latency, efficient memory use, infrastructure and practical deployment on resource‑constrained platforms.

What You'll Be Doing
  • Partnering with NVIDIA's software, research, architecture, and product teams to align strategies and technical needs, encouraging the ecosystem of AI on RTX and DGX PCs.
  • Building and optimizing local AI inference stack for RTX, RTX Pro and DGX GPUs, focusing on performance, stability, and scalability across various hardware architectures.
  • Architecture and development of modern inference runtimes and execution stacks, covering frameworks like Llama.cpp, vLLM, PyTorch, WinML, DXCGC, and TensorRT-RTX across LLMs, vision-language, TTS, ASR, and diffusion AI workloads.
  • Perform end-to-end optimization of AI models, data pipelines, and inference runtimes to enhance performance across current and next-generation GPU architectures. Apply model optimization techniques such as quantization, pruning, sparsity, and distillation to enable efficient deployment of large models on local and edge devices.
  • Perform system-level debugging, performance optimization, and performance–accuracy trade‑off analysis; develop infrastructure for performance and accuracy sweeps, analyze results to identify gaps, and drive fixes; and establish engineering guidelines to accelerate bring‑up and ensure production readiness of new models and inference backends.
What We Need To See
  • 4+ years of experience with Bachelor's, Master's, or PhD in Computer Science, Software Engineering, Mathematics, or a related field, or equivalent experience.
  • Excellent C++ programming and debugging skills, with a strong understanding of data structures, algorithms and machine learning.
  • Proven experience working with AI inferencing pipelines and applications using ML/DL frameworks, such as Llama.cpp, vLLM, PyTorch, WinML, DXCGC and TensorRT.
  • Deep interest in inference backends and runtime internals, including scheduling, memory management, KV‑cache behavior, graph execution, quantization, and hardware‑aware optimization.
  • Strong analytical and problem‑solving abilities, with the capability to multitask effectively in a dynamic environment.
  • Outstanding written and oral communication skills, facilitating effective collaboration with management and engineering teams.
Ways To Stand Out From The Crowd
  • Understanding of modern techniques in Machine Learning, Deep Neural Networks, and Generative AI, with relevant contributions to major open‑source projects.
  • Consistent track record of delivering end-to-end products with geographically distributed teams in multinational product companies.
  • Proficiency in lower‑level system/GPU programming, CUDA, and developing high-performance systems.
  • Contributions to open‑source inference runtimes, model tooling, or performance infrastructure.
  • Hands‑on experience building applications with frameworks and APIs like Llama.cpp, PyTorch, TensorRT, Vulkan, and DirectX, 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.

, , JR2024810

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