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Job Description

  • Accelerate customer time-to-value on the largest AI Infrastructure and High Performance Computing (HPC) workloads in Google Public Sector.
  • Build a trusted advisory relationship with customer architects, engineering leadership, and research teams. Identify customer priorities, technical objections and design strategies focused on Google AI Infrastructure and HPC ecosystem to deliver business value and resolve blockers.
  • Provide domain expertise around hardware accelerators (GPU/TPU), prevailing ML Frameworks (PyTorch, Keras, JAX), and model building techniques.
  • Make recommendations on Graphics Processing Unit/Tensor Processing Unit (GPU/TPU) hardware, framework selection, benchmarks, and model building required to successfully implement a complete solution.
  • Manage the holistic research engineering relationship with customers by collaborating with specialists, product management, technical teams, and more.

Minimum qualifications:

  • Bachelor's degree or equivalent practical experience.
  • 10 years of experience with cloud native architecture in a customer-facing or support role.
  • Experience engaging with, or presenting to, technical stakeholders or executive leaders.
  • Experience with machine learning (ML) model development and deployment.
  • Active US Government Top Secret/Sensitive Compartmentalized Information (TS/SCI) security clearance with polygraph.
  • Ability to travel up to 20% of the time.

Preferred qualifications:

  • Experience with prevailing ML development frameworks (e.g., Keras, PyTorch, Tensorflow, JAX).
  • Experience with both GPU and TPU based infrastructure.
  • Familiarity with prevailing AI related tooling (Slurm, vLLM, Ray, Vertex, K8s, etc.).
  • Familiarity across the AI software development life cycle (data processing, model building, training, evaluation, deployment).
  • Ability to deliver results and work cross-functionally to position and orchestrate a solution consisting of multiple products.
  • Bachelor's degree or equivalent practical experience.
  • 10 years of experience with cloud native architecture in a customer-facing or support role.
  • Experience engaging with, or presenting to, technical stakeholders or executive leaders.
  • Experience with machine learning (ML) model development and deployment.
  • Active US Government Top Secret/Sensitive Compartmentalized Information (TS/SCI) security clearance with polygraph.
  • Ability to travel up to 20% of the time.
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Google
AI Research Lab · 500+ Members · Mountain View, CA, United States

Google builds internet, software, cloud, and AI products used by consumers, developers, and organizations. Its portfolio includes Search, YouTube, Android, Chrome, Maps, Gmail, Workspace, Google Cloud, advertising platforms, devices, and Gemini AI products. The company develops large-scale computing infrastructure and research that power information retrieval, communication, productivity, media, navigation, and machine learning. Google is the largest operating business within Alphabet and earns a substantial share of its revenue from digital advertising.

All jobs at Google

Location

United States

Job Overview
Job Posted:
1 week ago
Workplace
On-site
Job Type
Full Time
Education
Any
Experience
3+ years

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