Research Scientist, Multi-Modal Understanding & Synthesis

Meta

$150K — $180K *
Consumer Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Computer Engineering, or relevant field
  • PhD in Machine Learning, Computer Vision, or Natural Language Processing
  • 6+ years of AI research experience in multi-modal learning or generative models
  • Proficient in Python and experienced with deep learning frameworks like PyTorch or TensorFlow
  • Proven publication record in peer-reviewed machine learning or AI venues
  • Strong ability to communicate complex research findings to technical audiences
  • Experience with techniques in vision-language models or multi-modal transformers

Responsibilities

  • Lead research initiatives in multi-modal learning architectures and algorithms
  • Develop predictive world models of human behavior for simulation and reasoning
  • Manage end-to-end research projects from formulation to prototype integration
  • Create novel multi-modal synthesis approaches for content generation
  • Establish evaluation frameworks and metrics for multi-modal reasoning
  • Mentor peers in multi-modal architectures and generative models
  • Publish influential research findings at top-tier machine learning conferences

Benefits

  • Opportunity to collaborate with world-class researchers and engineers
  • Access to cutting-edge AI tools and technologies
  • Contribute to influential publications and shape AI advancements
  • Support for professional development and continuing education
  • Collaborative and innovative work environment
Full Job Description
In this role, you will advance the state of the art in building AI systems that perceive, reason across, and generate content spanning vision, language, audio, and other modalities. You will develop world models that learn rich internal representations of human behavior, enabling prediction, planning, and simulation. Collaborating with world-class researchers and engineers, you will define research directions, publish influential work, and translate breakthroughs into technologies that power Meta's next-generation AI products.

Responsibilities

Lead original research in multi-modal learning, developing architectures and algorithms that unify understanding and generation across vision, language, audio, and other modalities
• Design and build world models that learn predictive representations of human behavior, supporting capabilities such as simulation, planning, and reasoning
• Drive end-to-end research projects from problem formulation and dataset curation through model development, evaluation, and integration into real-time prototypes
• Develop novel approaches for multi-modal synthesis, enabling coherent generation of images, video, text, and audio from unified representations
• Establish rigorous evaluation frameworks, benchmarks, and metrics to measure progress in multi-modal reasoning and world modeling
• Mentor other engineers and researchers on the team, providing technical guidance on multi-modal architectures, generative models, and research best practices
• Publish research findings at top-tier peer-reviewed venues such as NeurIPS, ICLR, and CVPR to advance the broader scientific community

Minimum Qualifications
• Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience
• PhD in Machine Learning, Computer Vision, Natural Language Processing, or a closely related field
• 6+ years of experience conducting AI research in multi-modal learning, generative models, or world models, including experience leading major research initiatives from conception through publication or production deployment
• Experience implementing and evaluating multi-modal systems using deep learning frameworks such as PyTorch or TensorFlow, with proficiency in Python
• Experience publishing original research in peer-reviewed machine learning or AI venues
• Experience driving cross-functional technical decisions and communicating research findings and trade-offs to both research and engineering audiences through written documents and presentations
• Experience with techniques spanning multiple modalities such as vision-language models, multi-modal transformers, or cross-modal representation learning

Preferred Qualifications
• Experience developing large-scale multi-modal foundation models or vision-language models
• Experience with world models, predictive learning, or model-based reinforcement learning for planning and reasoning
• First-author publications at top-tier venues such as NeurIPS, ICLR, or CVPR demonstrating contributions to multi-modal learning, generative models, or world models

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