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Deep Learning Software Engineering Intern, Test Development - 2027

NVIDIA

Deep Learning Software Engineering Intern, Test Development - 2027

full-timePosted: Aug 21, 2026Updated: Aug 27, 2026Shanghai, China

Job Description

Deep Learning SWQA Mobile team has permission to open 1 intern Req. Looking for full time interns to help on cuDNN, TensorRT, DL FW, TensorRT Model Connect or DL Mobile SWQA projects in the next 12+ months. We are now looking for a Deep Learning Software Test Development Engineering Intern. 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:GPU Software testing and test automation improvement for NVIDIA Deep Learning Software products, such as cuDNN, TensorRT, NVIDIA optimized Frameworks (E.g. TensorFlow, PyTorch, MxNET, etc.)Be responsible for functionality, compatibility, and performance tests in DL SW stack release.Work with development teams to triage issues, root cause analysis, verify fixes, define new tests, improve test plans. 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: Pursuing MS or higher degree in CS/EE/CE.Scripting language (Python, Perl, bash), Linux knowledge is required.Experiences in C/C++ programming is a plus.Familiarity any Deep Learning Framework is a strong plus.Good communication skills, fluent oral and written English.Experience with AI tools. Ways to stand out from the crowd:Familiarity working with NVIDIA GPU hardware is a strong plus.Background with NVIDIA GPU Computing (CUDA) is a strong plus.Proven success in leveraging AI tools to significantly improve efficiency, streamline workflows or enhance process automation. NVIDIA is committed to fostering a diverse 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) based on race, religion, color, national origin, gender, gender expression, sexual orientation, age, marital status, veteran status, disability status or any other characteristic protected by law.

Locations

  • Shanghai, China

Skills Required

  • AI toolsintermediate

Preferred Qualifications

  • Familiarity any Deep Learning Framework is a strong plus. (experience)
  • Good communication skills, fluent oral and written English. (experience)
  • Experience with AI tools. (experience)

Responsibilities

  • GPU Software testing and test automation improvement for NVIDIA Deep Learning Software products, such as cuDNN, TensorRT, NVIDIA optimized Frameworks (E.g. TensorFlow, PyTorch, MxNET, etc.)
  • Be responsible for functionality, compatibility, and performance tests in DL SW stack release.
  • Work with development teams to triage issues, root cause analysis, verify fixes, define new tests, improve test plans.
  • 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.
  • GPU Software testing and test automation improvement for NVIDIA Deep Learning Software products, such as cuDNN, TensorRT, NVIDIA optimized Frameworks (E.g. TensorFlow, PyTorch, MxNET, etc.)
  • Be responsible for functionality, compatibility, and performance tests in DL SW stack release.
  • Work with development teams to triage issues, root cause analysis, verify fixes, define new tests, improve test plans.
  • 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.

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