Senior Inference Engineer, AGI
Job in
Sunnyvale, Santa Clara County, California, 94085, USA
Listed on 2026-10-02
Listing for:
Amazon
Full Time
position Listed on 2026-10-02
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Job Description & How to Apply Below
You will operate at the boundary of Science and Inference, taking frontier-scale speech andaudio models and making them run within real-time latency budgets on production hardware.
You will co-design architectures with scientists to make them inference-friendly from inception,own the low-latency streaming serving path, and build the training and reinforcement-learning infrastructure that closes the loop. You will have the compute, data, and runway to solve problems that few teams in the world are positioned to tackle.
As a Senior Engineer, you will own a significant area of the inference stack end to end, drive its technical execution, contribute to the team's roadmap, and work closely with scientists and hardware partners to ensure our models run fast enough to feel human in real time — and at acost that makes them viable may go deep in one of the areas below while contributing across the others.
Key job responsibilities
Model Architecture & Inference Co-Design
• Partner with research scientists to make model architectures servable from inception —surfacing the latency, memory, and cost implications of architecture choices before they arelocked in
• Implement and optimize the inference path for large-scale multimodal models — attention and KV-cache mechanisms, multimodal/autoregressive decoding, and the compute primitives on the critical path Apply efficiency techniques across the stack — quantization (per-tensor/per-channel/per-group, INT8/FP8/BF16), speculative decoding, operator fusion, and paged KV-cache — andquantify their quality/latency trade-offs
• Develop and tune high-performance kernels for critical operations where off-the-shelf implementations leave performance on the table, integrating them into production serving with minimal overhead
• Profile end-to-end performance with tools such as Nsight Compute/Systems and rooflineanalysis to identify and eliminate bottlenecks in large-scale inference workloads
Real-Time & Interactive Runtime
• Own the real-time serving path for streaming multimodal conversational AI, meeting sub-second, streaming latency budgets under concurrent session load
• Build and tune continuous batching, scheduling, and preemption to balance throughput against per-request latency SLAs for interactive workloads
• Customize production serving frameworks (e.g., vLLM, PyTorch) for real-time streaming generative models that fall outside standard LLM serving patterns — sustained low-latency output under concurrent session load
• Implement multi-GPU inference (tensor parallelism, collective communication) for latency-critical paths, and drive cost toward parity with existing production baselines
• Establish latency, throughput, and cost benchmarking, and publish the operational metrics that gate deployment
Offline Systems:
Training, RL & Evaluation Infrastructure
• Build and scale the offline inference systems behind post-training — high-throughput rolloutgeneration and reward-model serving for reinforcement learning (RL/RLHF/RLAIF)
• Ensure train/serve consistency — that the inference path used in RL and evaluation faithfully matches production online behavior (e.g., parity across sampling and logitprocessing)
• Work with the evaluation team to enable offline inference that captures the quality dimensions unique to real-time conversation — latency sensitivity, audio quality, and interaction…
Position Requirements
10+ Years
work experience
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