Senior Deep Learning Test Development Engineer, SDET

Reposted 7 Days Ago
Be an Early Applicant
Shanghai, Shanghai Municipality, Shanghai, CHN
In-Office
Senior level
Artificial Intelligence • Computer Vision • Hardware • Robotics • Metaverse
The Role
Design, implement, and automate tests and test frameworks for NVIDIA deep learning software and GPU infrastructure. Plan, execute, and report test plans; manage bug lifecycle; reproduce and verify customer issues; and use AI-powered tools to improve test efficiency and quality.
Summary Generated by Built In

We are looking for a Software Test development engineer in NVIDIA’s Deep Learning SWQA team. The position is in NVIDIA Deep Learning Software Quality Assurance team that defines, develops and performs tests to validate robustness and measure the performance of NVIDIA‘s Deep Learning software and GPU Infrastructure for autonomous driving, healthcare, speech recognition, natural language processing, and a wide variety of other AI scenarios. This team collaborates with multiple AI product teams to develop new products; derive and improve complex test plans; and improve our workflow processes for a diverse range of GPU computing platforms. You should grow with being in the critical path supporting developers working for billion-dollar business lines as well as intimately understanding the values of responsiveness, thoroughness and teamwork. You should constantly foster and implement efficiency improvements across your domain. Join the team which is building software which will be used by the entire world!
 

What you’ll be doing:

  • Work closely with global cross-functional teams to understand the test requirements and take ownership of product quality.

  • Plan/design/execute/report/automate test plan/test case/test reports.

  • Manage bug lifecycle and co-work with inter-groups to drive for solutions.

  • Automate test cases and assist in the architecture, crafting and implementing of test frameworks.

  • In-house repro and verify customer issues/fixes.

  • Utilize AI-powered tools to improve efficiency and quality, including test case/plan/script generation, defect detection, CBTP, bug fixing and day to day assistance. 

What we need to see:

  • BS or higher degree in CS/EE/CE or equivalent experience.

  • 5+ years of software quality assurance or test automation background with knowledge of test infrastructure and strong analysis skills.

  • Scripting language (Python, Perl, Bash) knowledge and UNIX/Linux experience.

  • Good C/C++ software development, DevOps or test development experience.

  • Good user/development experiences of virtualization like VM & Docker container.

  • Excellent English written and oral communication skills.

  • Able to juggle conflicting/changing priorities and maintain a positive attitude while experiencing challenging and dynamic schedules.

  • Experience with AI Agents/tools.

Ways to stand out from the crowd:

  • Familiarity with NVIDIA GPU hardware products (Tesla, Tegra, DGX, etc).

  • Working knowledge of NVIDIA GPU Computing (CUDA) and CUDA libraries for Deep Learning.

  • Experience in VectorCAST, Bullseye, Gcov, or Coverity tools.

  • Automation experience.

  • Experience with DL/LLM inference frameworks (TRT, TRT-LLM, Edge-LLM, vLLM, SGLang, etc.) and familiar with running various AI workloads, proven success in leveraging AI tools to significantly improve efficiency, streamline workflows or enhance process automation.

Skills Required

  • BS or higher in Computer Science, Electrical Engineering, Computer Engineering or equivalent experience
  • 5+ years software quality assurance or test automation experience
  • Scripting languages: Python, Perl, Bash
  • UNIX/Linux experience
  • C/C++ software development, DevOps or test development experience
  • Virtualization experience (VMs) and Docker/container experience
  • Excellent English written and oral communication skills
  • Ability to manage changing priorities and dynamic schedules
  • Experience with AI agents/tools and AI-powered test tooling
  • Familiarity with NVIDIA GPU hardware (Tesla, Tegra, DGX)
  • Working knowledge of CUDA and CUDA libraries for deep learning
  • Experience with VectorCAST, Bullseye, Gcov, or Coverity
  • Automation experience and test framework architecture/implementation
  • Experience with DL/LLM inference frameworks (TensorRT, TRT-LLM, Edge-LLM, vLLM, SGLang, etc.)
  • Proven success leveraging AI tools to improve efficiency and automation

NVIDIA Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about NVIDIA and has not been reviewed or approved by NVIDIA.

  • Equity Value & Accessibility Equity awards and a discounted ESPP are highlighted as core parts of total compensation, enabling employees to share in the company’s success. Stock-based compensation and the two-year lookback ESPP are consistently described as especially valuable.
  • Healthcare Strength Health coverage is portrayed as robust, with comprehensive medical, dental, and vision options alongside mental health support and on-site care resources. Employer HSA contributions and wellness perks reinforce the depth of the offering.
  • Retirement Support Retirement programs are depicted as strong, featuring a meaningful 401(k) match with Roth options and support for Mega Backdoor Roth contributions. These elements position long-term savings as a notable advantage of the total rewards package.

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The Company
HQ: Santa Clara, CA
21,960 Employees
Year Founded: 1993

What We Do

NVIDIA’s invention of the GPU in 1999 sparked the growth of the PC gaming market, redefined modern computer graphics, and revolutionized parallel computing. More recently, GPU deep learning ignited modern AI — the next era of computing — with the GPU acting as the brain of computers, robots, and self-driving cars that can perceive and understand the world. Today, NVIDIA is increasingly known as “the AI computing company.”

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