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Research Scientist, Multimodal Generative AI, Google DeepMind

GOOGLE ASIA PACIFIC PTE. LTD.

Singapore

On-site

SGD 80,000 - 100,000

Full time

Today
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Job summary

A leading technology company in Singapore is looking for a Research Scientist to design and implement cutting-edge deep learning algorithms, particularly in generative AI. The ideal candidate will have a PhD in a relevant field and at least 2 years of experience in deep learning research. Join a collaborative team focused on ethical AI development and groundbreaking research advancements.

Qualifications

  • PhD in Computer Science, Artificial Intelligence, Machine Learning, or equivalent.
  • 2+ years of experience in deep learning, especially in generative AI.
  • Experience in software development with deep learning frameworks.

Responsibilities

  • Design and implement deep learning algorithms for multimodal generative AI.
  • Report research findings clearly and efficiently.
  • Collaborate with teams to meet research goals.
  • Work with Ethics and Governance teams to ensure ethical development.

Skills

Deep learning research
Generative AI
Computer vision
Programming in Python

Education

PhD in Computer Science or related field

Tools

TensorFlow
PyTorch
Jax
Job description
Job Description

Our team works on developing state-of-the-art methods for AI generative media models, with a particular focus on culturally-adapted image and video generation.

At Google DeepMind, we've built a unique culture and work environment where long-term ambitious research can flourish. Our special interdisciplinary team combines the best techniques from deep learning, reinforcement learning, and systems neuroscience to build general-purpose learning algorithms. We have already made a number of high-profile breakthroughs towards building artificial general intelligence, and we have all the ingredients in place to make further significant progress over the coming year!

Research Scientists lead our efforts in developing novel tools, infrastructure, and algorithms towards the end goal of solving and building Artificial General Intelligence.

Having pioneered research in the world's leading academic and industrial labs, PhDs, post‑docs, or professorships, Research Scientists join Google DeepMind to work collaboratively within and across Research fields. They are expected to work with teams on large scale AI, and develop solutions to fundamental questions in machine learning and AI.

Drawing on expertise from a variety of disciplines including deep learning, computer vision, language modeling, and advanced generative architectures, our Research Scientists are at the forefront of groundbreaking research.

Job responsibilities
  • Design, rapidly implement, and rigorously evaluate cutting‑edge deep learning algorithms and data curation for multimodal generative AI, with a particular emphasis on culturally‑adapted image and video synthesis.
  • Report and present research findings and developments clearly and efficiently both internally and externally, verbally and in writing.
  • Suggest and engage in team collaborations to meet ambitious research goals, while also driving significant individual contributions.
  • Work in collaboration with our Ethics and Governance teams to ensure our advances in intelligence are developed ethically and provide broad benefits to humanity.
Minimum qualifications
  • PhD in Computer Science, Artificial Intelligence, Machine Learning, Computer Vision, or equivalent practical experience.
  • 2+ years of relevant experience in deep learning research and development, particularly in generative AI and related to image and video synthesis. This includes diffusion models and autoregressive generative models.
  • Experience in software development with one or more programming languages (e.g., Python) and deep learning frameworks (e.g., Jax, TensorFlow, PyTorch), with a track record of building high-quality research prototypes and systems.
Preferred qualifications
  • Demonstrated experience in large-scale training of multimodal generative models.
  • A track record of research or engineering achievements, including publications in peer-reviewed conferences or journals.
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