Software Engineer, ML/AI Reference Models, Google Cloud

2 Months ago • 2 Years + • Research & Development • Artificial Intelligence • Undisclosed

About the job

Job Description

In this role, you'll work to shape the future of AI/ML hardware acceleration. You will have an opportunity to drive cutting-edge TPU (Tensor Processing Unit) technology that powers Google's most demanding AI/ML applications. You’ll be part of a diverse team that pushes boundaries, developing custom silicon solutions that power the future of Google's TPU. You'll contribute to the innovation behind products loved by millions worldwide, and leverage your design and verification expertise to verify complex digital designs, with a specific focus on TPU architecture and its integration within AI/ML-driven systems.In this role, you will be responsible for developing functional and/or performance models for ML compute IPs and integrating them with the Cloud TPU SoC model. You will be working closely with ML and SoC architecture teams to understand the instruction set and architecture of ML IPs in good detail. You will be working closely with pre-silicon (e.g., DV, emulation), post-silicon, and Software teams who will be using these models as a part of their validation flow and aid in delivering high quality designs for next generation data center accelerators.
Must have:
  • Bachelor's degree in Computer Science or related field
  • 2 years of experience developing simulators or reference models for hardware
  • Experience with programming in C/C++ and scripting (e.g., Python/Perl)
  • Develop functional and/or performance models for ML IPs
  • Integrate the functional models with the Cloud TPU SoC model
Good to have:
  • Master's degree in Computer Science, Electrical Engineering, or a related field
  • Experience in modeling Machine Learning IPs, specifically compute IPs
  • Experience in integrating IP models with the SoC model
  • Familiarity with industry standard AI/ML topologies such as RESNET, BERT, etc.

Minimum qualifications:

  • Bachelor's degree in Computer Science, a related technical field, or equivalent practical experience.
  • 2 years of experience with developing simulators or reference models for hardware.
  • Experience with programming in C/C++ and scripting (e.g., Python/Perl).

Preferred qualifications:

  • Master's degree in Computer Science, Electrical Engineering, or a related field.
  • Experience in modeling Machine Learning IPs, specifically compute IPs.
  • Experience in integrating IP models with the SoC model.
  • Familiarity with industry standard AI/ML topologies such as RESNET, BERT, etc.

About the job

In this role, you’ll work to shape the future of AI/ML hardware acceleration. You will have an opportunity to drive cutting-edge TPU (Tensor Processing Unit) technology that powers Google's most demanding AI/ML applications. You’ll be part of a diverse team that pushes boundaries, developing custom silicon solutions that power the future of Google's TPU. You'll contribute to the innovation behind products loved by millions worldwide, and leverage your design and verification expertise to verify complex digital designs, with a specific focus on TPU architecture and its integration within AI/ML-driven systems.

In this role, you will be responsible for developing functional and/or performance models for ML compute IPs and integrating them with the Cloud TPU SoC model. You will be working closely with ML and SoC architecture teams to understand the instruction set and architecture of ML IPs in good detail. You will be working closely with pre-silicon (e.g., DV, emulation), post-silicon, and Software teams who will be using these models as a part of their validation flow and aid in delivering high quality designs for next generation data center accelerators.

Behind everything our users see online is the architecture built by the Technical Infrastructure team to keep it running. From developing and maintaining our data centers to building the next generation of Google platforms, we make Google's product portfolio possible. We're proud to be our engineers' engineers and love voiding warranties by taking things apart so we can rebuild them. We keep our networks up and running, ensuring our users have the best and fastest experience possible.

Responsibilities

  • Study the instruction set and architecture of the ML IPs and drive discussions on the delta features from the previous generation.
  • Develop functional and/or performance models for the ML IPs. Integrate the functional models with the Cloud TPU SoC model and deliver the single source of truth architectural reference.
  • Work with pre-silicon verification and post-silicon validation teams to deploy the models into their validation flows.
  • Work with compiler and software teams to enable them to left-shift their development activity.
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About The Company

A problem isn't truly solved until it's solved for all. Googlers build products that help create opportunities for everyone, whether down the street or across the globe. Bring your insight, imagination and a healthy disregard for the impossible. Bring everything that makes you unique. Together, we can build for everyone.

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