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Optimize LLM training and serving performance on GPU hardware by maintaining benchmarks, analyzing bottlenecks, and collaborating with product teams like DeepMind. Requires five years of software development experience, five years with machine learning algorithms and deep learning, and three years testing or launching products. Strong background in GPU programming, performance analysis, and compiler optimization preferred.

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Job Description

  • Identify and maintain Large Language Model (LLM) training and serving benchmarks that are representative of Google production, industry, and the ML community, using them to identify performance opportunities, drive Accelerated Linear Algebra (XLA) Graphics Processing Unit (GPU)/Triton performance, and guide XLA releases.
  • Engage with Google product teams like DeepMind to solve their ML model performance problems, such as onboarding new LLM models and products on GPU hardware and enabling LLMs to train and serve efficiently at a very large scale.
  • Run architecture-level simulations on GPU designs and perform roofline analysis to guide internal teams.
  • Analyze performance and efficiency metrics to identify bottlenecks, as well as design and implement solutions at Google fleet-wide scale.
  • Run performance benchmarks on GPU hardware using internal and external tools.

Minimum qualifications:

  • Bachelor’s degree or equivalent practical experience.
  • 5 years of experience with software development in one or more programming languages.
  • 5 years of experience with data structures and algorithms.
  • 5 years of experience with machine learning algorithms and tools, artificial intelligence, deep learning, or natural language processing.
  • 3 years of experience testing, maintaining, or launching software products, and 1 year of experience with software design and architecture.

Preferred qualifications:

  • Master's degree or PhD in Computer Science or a related technical field.
  • 1 year of experience in a technical leadership role.
  • Experience with hardware/compiler co-design or high-performance computing (HPC).
  • Experience in performance analysis and debugging, improving performance of single-node or multi-node (distributed) systems.
  • Experience in GPU programming using CUDA or Triton kernels (or Palace/Mosaic kernels).
  • Background in Compiler optimizations or related fields would also be beneficial.
  • Bachelor’s degree or equivalent practical experience.
  • 5 years of experience with software development in one or more programming languages.
  • 5 years of experience with data structures and algorithms.
  • 5 years of experience with machine learning algorithms and tools, artificial intelligence, deep learning, or natural language processing.
  • 3 years of experience testing, maintaining, or launching software products, and 1 year of experience with software design and architecture.
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  • Role Senior GPU Performance Software Engineer, AI/ML
  • Experience 5-7 years
  • Education Bachelor Degree, or equivalent experience
  • Work type On-site
  • Location United Kingdom
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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.

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Job Overview
Eligibility
United Kingdom Right to work in the United Kingdom required.
Workplace
On-site
Job Posted:
2 days ago
Job Type
Full Time
Education
Bachelor Degree, or equivalent experience
Experience
5-7 years

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