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Home›Jobs›Google›Staff Research Scientist, ML Efficiency, Google Research
Google

About Google

Empowering the world through technology and information

🏢 Tech👥 100K+📅 Founded 1998📍 Mountain View, California, United States

Key Highlights

  • Over 100,000 employees globally
  • Headquartered in Mountain View, California
  • Parent company Alphabet Inc. valued at $1.5 trillion
  • Google Cloud Platform serves millions of customers

Google LLC, headquartered in Mountain View, California, is a global leader in internet-related services and products, including its flagship search engine, Google Search, and the Android operating system. With over 100,000 employees, Google also offers cloud computing services through Google Cloud P...

🎁 Benefits

Google offers competitive salaries, equity options, generous PTO policies, comprehensive health benefits, and a remote work policy that allows flexibi...

🌟 Culture

Google is known for its engineering-first culture, emphasizing innovation and collaboration. The company fosters a unique environment that encourages ...

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Google

Staff Research Scientist, ML Efficiency, Google Research

Google • Singapore

Posted 1w ago🏛️ On-SiteLeadResearch scientist📍 Singapore
Apply Now →

Skills & Technologies

Artificial intelligenceDeep learningMachine learningComputational statisticsApplied mathematicsTransformer architecture

Job Description

Minimum qualifications:

  • PhD degree in Computer Science, a related field, or equivalent practical experience.
  • 4 years of experience in a university or industry labs, with Artificial Intelligence (AI) research.
  • One of more scientific publication submissions for conferences, journals, or public repositories (such as CVPR, ICCV, NeurIPS, ICML, ICLR, etc.).

Preferred qualifications:

  • Experience with deep/machine learning, computational statistics, and applied mathematics.
  • Knowledge of transformer architecture internals.
  • Ability to drive new research ideas from problem abstraction, designing solutions, experimentation, to productionisation in a rapidly shifting landscape.
  • Excellent technical leadership and communication skills to conduct multi-team cross-function collaborations.
As an organization, Google maintains a portfolio of research projects driven by fundamental research, new product innovation, product contribution and infrastructure goals, while providing individuals and teams the freedom to emphasize specific types of work. As a Research Scientist, you'll setup large-scale tests and deploy promising ideas quickly and broadly, managing deadlines and deliverables while applying the latest theories to develop new and improved products, processes, or technologies. From creating experiments and prototyping implementations to designing new architectures, our research scientists work on real-world problems that span the breadth of computer science, such as machine (and deep) learning, data mining, natural language processing, hardware and software performance analysis, improving compilers for mobile platforms, as well as core search and much more.

As a Research Scientist, you'll also actively contribute to the wider research community by sharing and publishing your findings, with ideas inspired by internal projects as well as from collaborations with research programs at partner universities and technical institutes all over the world.

Google Research Singapore is the very latest addition to the Google Research presence around the globe!

In this role, you will be making significant breakthroughs towards Computational Efficiency of large-scale Generative AI Models (LLMs, Diffusion Models, Generative Videos).Google Research is building the next generation of intelligent systems for all Google products. To achieve this, we’re working on projects that utilize the latest computer science techniques developed by skilled software developers and research scientists. Google Research teams collaborate closely with other teams across Google, maintaining the flexibility and versatility required to adapt new projects and foci that meet the demands of the world's fast-paced business needs.
  • Advance algorithms, sampling techniques and large-scale optimization to make serving and inference of generative AI models more efficient and flexible.This includes model compression, knowledge distillation and quantization strategies.
  • Innovate algorithms and large language model architectures that improve computation efficiency and generalization of training deep learning models.
  • Improve the end-to-end model deployment pipeline that includes entirely new formulations of pretraining, instruction tuning, reinforcement learning, thinking and reasoning.
  • Collaborate with hardware and software teams to optimize kernels and inference engines, across different hardware and model architectures.
  • Optimize latency, memory bandwidth, workloads.

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