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Sr. Software Engineer- AI​/ML, AWS Neuron Distributed Training

Job in Seattle, King County, Washington, 98127, USA
Listing for: Amazon Web Services (AWS)
Apprenticeship/Internship position
Listed on 2026-09-14
Job specializations:
  • Software Development
    Machine Learning/ ML Engineer, Software Engineer, AI Engineer (Applied/Software), Cloud Engineer - Software
Salary/Wage Range or Industry Benchmark: 168100 - 227400 USD Yearly USD 168100.00 227400.00 YEAR
Job Description & How to Apply Below

Description

The Annapurna Labs team at Amazon Web Services (AWS) builds AWS Neuron, the software development kit used to accelerate deep learning and GenAI workloads on AWS Trainium, Amazon's custom machine learning accelerator. Neuron includes an ML compiler, runtime, collectives library, and application framework that integrate with PyTorch and JAX, so customers can train frontier-scale models on Trainium without rewriting their stack.

Description

The Annapurna Labs team at Amazon Web Services (AWS) builds AWS Neuron, the software development kit used to accelerate deep learning and GenAI workloads on AWS Trainium, Amazon's custom machine learning accelerator. Neuron includes an ML compiler, runtime, collectives library, and application framework that integrate with PyTorch and JAX, so customers can train frontier-scale models on Trainium without rewriting their stack.

The Distributed Training team is at the forefront of training a wide range of models on AWS's custom ML accelerators, supporting novel architectures while maximizing their training performance. Working across the stack from PyTorch and JAX down to the hardware and software boundary, our engineers build the infrastructure that large-scale training depends on, develop new parallelism and numerics techniques, and tune high-performance kernels for the operations that dominate a training step, so every compute unit is doing useful work on our customers' most demanding workloads.

We combine deep hardware knowledge with ML expertise to push the limits of training efficiency at scale.

As part of the broader Neuron organization, our team works across multiple technology layers, from frameworks and kernels through to the compiler, runtime, and collectives teams. This is hardware and software co-design in practice. A single throughput gap rarely sits in one layer, so tracing it means following the problem across the stack, deciding where the fix belongs, and working with the team that owns that layer to land it.

We not only optimize current performance but also contribute to future architecture designs, since the gaps we characterize today become requirements for the next generation of Trainium. We work closely with customers to enable their models and ensure they train efficiently. This role offers a rare opportunity to work at the intersection of machine learning, high-performance computing, and distributed systems, where you will help shape the direction of AI acceleration technology.

You will architect and implement business critical features, and mentor a team of experienced engineers. We operate in spaces that are very large, yet our teams remain small and agile. There is no blueprint. We are inventing. We are experimenting. It is a genuinely unique learning culture. The team works directly with customers on model enablement, providing hands‑on support and optimization expertise so their training workloads reach the performance they need on AWS ML accelerators.

We also collaborate with the open source ecosystem, contributing upstream so integration is seamless and performance holds at scale for customers and developers.

Key job responsibilities

You will lead efforts to optimize distributed training performance on Trainium, with a primary focus on training throughput, model FLOPs utilization, and time to convergence across the Neuron software stack. You will work across PyTorch, JAX, and the Neuron compiler and runtime to enable and tune large‑scale training workloads on the latest Trainium instances. You will bring up model architectures that have never run on Trainium, identifying the missing operators, sharding strategies, and numerics needed to train them correctly, and then close the gap between correct and fast.

You will…

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