Annapurna Labs (U. S. ) Inc.
Technology
MachineLearning-CompilerEngineerII
Neural analysis suggests this role is
optimal for Mid candidates.
“Machine Learning - Compiler Engineer II at Annapurna Labs (U. S. ) Inc.. Skills: Machine Learning, Compiler Engineering, Software Development, AI Accelerators. Support compiler development. Scale compiler”
Industry & Context.
Optimize performance; Troubleshoot issues
What They're Looking For.
Must Have
3+ years software development experience, 2+ years system design/architecture experience, Experience programming with one language, 2+ years compiler architecting/optimizing experience, Proficiency in C++, Proficiency in C, Proficiency in Python
Nice to Have
3+ years full SDLC experience, Experience with multiple toolchains, Experience with Instruction Set Architectures, Proficiency with resource management, Proficiency with scheduling, Proficiency with code generation, Proficiency with compute graph optimization, Experience optimizing Tensorflow, Experience optimizing PyTorch, Experience optimizing MxNET models, Background in Machine Learning, Background in AI accelerators
What You'll Do.
Support compiler development
Leverage technical communications
Partner with ML services teams
Involve in pre-silicon design
Bring products to market
Work on exciting projects
Optimize neural net models
Develop deep learning compiler stack
Convert neural network descriptions
Create code for execution
How You'll Work.
Team & Collaboration
AWS ML services teams; AWS Neuron team; Silicon engineering; Hardware design; Software operations; Engineering; Research; Product communities
Communication Scope
Technical communications
Full Job Description
The Product: AWS Machine Learning accelerators are at the forefront of AWS innovation and one of several AWS tools used for building Generative AI on AWS. The Inferentia chip delivers best-in-class ML inference performance at the lowest cost in cloud. Trainium will deliver the best-in-class ML training performance with the most teraflops (TFLOPS) of compute power for ML in the cloud. This is all enabled by cutting edge software stack, the AWS Neuron Software Development Kit (SDK), which includes an ML compiler, runtime and natively integrates into popular ML frameworks, such as PyTorch, TensorFlow and MxNet. AWS Neuron and Inferentia are used at scale with customers like Snap, Autodesk, Amazon Alexa, Amazon Rekognition and more customers in various other segments. The Team: As a whole, the Amazon Annapurna Labs team is responsible for silicon development at AWS. The team covers multiple disciplines including silicon engineering, hardware design and verification, software and operations. The AWS Neuron team works to optimize the performance of complex neural net models on our custom-built AWS hardware. More specifically, the AWS Neuron team is developing a deep learning compiler stack that takes neural network descriptions created in frameworks such as TensorFlow, PyTorch, and MXNET, and converts them into code suitable for execution. As you might expect, the team is comprised of some of the brightest minds in the engineering, research, and product communities, focused on the ambitious goal of creating a toolchain that will provide a quantum leap in performance. You: Machine Learning Compiler Engineer II on the AWS Neuron team, you will be supporting the ground-up development and scaling of a compiler to handle the world's largest ML workloads. Architecting and implementing business-critical features, publish cutting-edge research, and contributing to a brilliant team of experienced engineers excites and challenges you. You will leverage your technical communications
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