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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.
Minimum Qualifications: 1.
Bachelor's degree or above in Computer Science, Electrical Engineering, Software Engineering, or a related field. 2.
Strong proficiency in C/C++ and Python; solid foundations in algorithms, data structures, and systems programming; familiarity with containerization and server-side debugging. 3.
Hands-on experience with at least one mainstream machine learning framework (e.g., PyTorch, TensorFlow). 4.
deploying or optimizing LLM/VLM inference at production scale, with demonstrated impact on latency, throughput, or serving cost. 5.
Familiarity with GPU architecture and experience optimizing compute-intensive operators (e.g., FlashAttention, GEMM, GEMV, Conv2D).
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with large-scale LLM serving infrastructure or equivalent production LLM deployment experience. 2.
in GPU programming (CUDA/OpenCL) and familiarity with frameworks such as TensorRT, Triton, or CUTLASS. 3.
in performance modeling, profiling, and optimization, or strong knowledge of CPU/GPU architectures. 4.
Familiarity with model/data parallelism frameworks for distributed inference.
Global technology company specializing in AI-powered content platforms.
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