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Research Engineer, Gemini Retrieval, DeepMind

Google
Posted 19 hours ago, valid for 24 days
Location

San Francisco, CA, US

Salary

$174,000 - $252,000 per year

Contract type

Full Time

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Sonic Summary

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  • The position at Google requires a Bachelor's degree in a related technical field and a minimum of 3 years of experience in machine learning, particularly with Large Language Models or Information Retrieval.
  • Candidates should also have 3 years of software engineering experience in Python, C++, JAX, or PyTorch, including implementing multi-stage training pipelines.
  • Preferred qualifications include experience in developing Reinforcement Learning algorithms and a track record in competitive programming or novel algorithm development.
  • The salary range for this role is between $174,000 and $252,000, along with a 15% bonus target, equity, and benefits.
  • The role involves collaborating with product teams to deploy machine learning innovations and contribute to the research community through partnerships and publications.

Minimum qualifications:

  • Bachelor's degree in Computer Science, Data Science, Artificial Intelligence, Machine Learning, or a related technical field, or equivalent practical experience.
  • 3 years of experience in machine learning, with a focus on Large Language Models (LLMs) or Information Retrieval (IR).
  • 3 years of experience with software engineering in Python, C++, JAX, or PyTorch programming, including experience implementing multi-stage training pipelines or algorithms.

Preferred qualifications:

  • Experience developing Reinforcement Learning (RL) algorithms, automated evaluation systems, or LLM reflection and reasoning frameworks.
  • Experience with competitive programming, mathematics competitions (e.g., ICPC, IOI, IMO), or a track record of developing novel algorithms.
  • Experience rapidly prototyping and iterating on complex systems, generative AI models, or multi-stage pipelines.
  • Experience collaborating with product engineering teams to deploy machine learning models or research innovations into large-scale production environments (e.g., Search, Recommendation Systems).
  • Track record of learning new software tools, frameworks, and codebases quickly to solve complex technical obstacles.

About the job:

At Google, research-focused Software Engineers are embedded throughout the company, allowing them to setup large-scale tests and deploy promising ideas quickly and broadly. Ideas may come from internal projects as well as from collaborations with research programs at partner universities and technical institutes all over the world.

From creating experiments and prototyping implementations to designing new architectures, engineers work on real-world problems including artificial intelligence, data mining, natural language processing, hardware and software performance analysis, improving compilers for mobile platforms, as well as core search and much more. But you stay connected to your research roots as an active contributor to the wider research community by partnering with universities and publishing papers.

Artificial intelligence will be one of humanity’s most transformative inventions. At Google DeepMind, we are a pioneering AI lab with exceptional interdisciplinary teams focused on advancing AI development to solve complex global challenges and accelerate high-quality product innovation for billions of users. We use our technologies for widespread public benefit and scientific discovery, ensuring safety and ethics are always our highest priority.


We are pushing the boundaries across multiple domains. Our global teams offer diverse learning opportunities and varied career pathways for those driven to achieve exceptional results through collective effort.
Individual pay is determined by factors including job-related skills, experience, and relevant education or training.

US: $174000 - $252000 (USD) + 15% bonus target + equity + benefits

Learn more about benefits at Google.

Responsibilities:

  • Uncover strategic opportunities at the intersection of Gemini, Search, factuality, continual learning, deep research, and domain internalization.
  • Analyze models and model-driven products beyond current leaderboards—understand complex problem spaces and create new ways to measure ideal behavior.
  • Use empirical findings to develop practical interventions and modeling innovations to improve our models across downstream surfaces.
  • Collaborate with product teams like Search and YouTube to scale research innovations into production environments, optimizing for quality and efficiency.



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