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AI Researcher, On-Device LLM Efficiency

AI Research Scientist • Vor Ort • Vollzeit Vereinigte Staaten San Diego, USA

As a Qualcomm Machine Learning Researcher, you will conduct fundamental research creating innovative machine learning methodology that achieves beyond state-of-the-art performance. The role focuses specifically on on-device LLM efficiency: inference efficiency algorithms, efficient model architecture design, and LLM training research.

Responsibilities

  • Research and development in LLM inference efficiency algorithms, efficient model architecture design, and/or LLM training
  • Develop creative solutions with consideration of practical challenges on devices
  • Implement and evaluate possible solutions in both simulation and on-device environments

Requirements

  • Master's degree in Computer Engineering, Computer Science, Electrical Engineering, or related field
  • 6+ months of academic and/or work experience developing/optimizing machine learning models, systems, platforms, or methods
  • 4+ years of AI research experience
  • Strong background in deep learning and Transformers
  • Strong programming skills in Python and PyTorch
  • Experience in LLM reasoning or inference acceleration research

Nice to have

  • PhD in Computer Science, Electrical Engineering, or related field
  • Experience in LLM efficiency research such as efficient attention, inference acceleration, or KV cache compression
  • Experience in on-device AI deployment on mobile or edge devices
  • Publishing research papers at top-tier AI/ML conferences (NeurIPS, ICML, ICLR) as lead author

Soft skills

Creative problem-solvingResearch independencePractical mindset applied to theoretical research

What we offer

  • Annual discretionary bonus program
  • Opportunity for annual RSU grants
  • Highly competitive benefits package
  • Indicative pay range: $138,800–$208,200

About the company

Qualcomm Technologies, Inc. is a leading technology innovator advancing mobile, edge, automotive and IoT products through machine learning research.

Education: Mesterdiploma számítástechnika/villamosmérnöki/számítógép-mérnöki területen; PhD előny

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