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Research Scientist Graduate (Seed AI Foundation Model Infrastructure) - 2027 Start (PhD)
San Jose
RegularR&DJob Description
About the team The Seed Infrastructures team oversees the distributed training, reinforcement learning framework, high-performance inference, and heterogeneous hardware compilation technologies for AI foundation models.
Responsibilities
- Design and build scalable infrastructure for large-scale model training, evaluation, and inference.
- Optimize distributed training systems across compute, memory, and communication.
- Improve system reliability, efficiency, and observability for large-scale workloads.
- Develop frameworks for evaluation, data processing, and model lifecycle management.
- Co-design systems and algorithms to improve performance of foundation models.
Qualifications Minimum Qualifications:
- Individuals who are completing or have recently completed a PhD degree in Computer Science, Electrical Engineering, Electrical and Computer Engineering, Physics, Mathematics, or a related discipline.
- Excellent coding ability, data structures, and fundamental algorithm skills, proficient in C/C++ or Python, etc.
- Experience in distributed systems, large-scale training infrastructure, or ML systems.
- Familiarity with deep learning frameworks and system optimization.
Preferred Qualifications:
- Strong problem-solving and engineering skills.
- Strong communication and collaboration skills.