Research Scientist, Multi-Modal Human Understanding

Meta

$120K — $145K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science or related field, or equivalent experience (must be completed prior to joining Meta)
  • 2+ years of multi-modal AI research, focusing on Vision-Language Models or human-centric AI
  • 2+ years of experience with large-scale neural networks, especially using PyTorch and transformer architectures
  • Familiarity with designing and executing experiments for multi-modal model evaluation
  • Proficiency in Python for writing production or research-quality code in multi-modal AI applications

Responsibilities

  • Design and implement multi-modal architectures for human understanding
  • Develop and train Vision-Language Models for various human interaction tasks
  • Construct video foundation models for temporal reasoning and action synthesis
  • Research generative synthesis techniques for video and motion generation
  • Conduct experiments to assess model performance and refine architectures
  • Contribute to the entire research lifecycle from problem formulation to evaluation

Benefits

  • Opportunity to work on cutting-edge multi-modal AI technologies
  • Engage in collaborative research with leading experts in the field
  • Access to extensive resources and support for innovative projects
  • Potential to influence human-computer interaction at scale
  • A dynamic and inclusive workplace culture
Full Job Description
Meta is seeking a Research Scientist to advance multi-modal AI technologies for human understanding and synthesis. In this role, you will develop Vision-Language Models (VLMs) and video foundation models that enable machines to perceive, interpret, and generate rich representations of human behavior, expression, and interaction. Your research will span multi-modal reasoning, video understanding, and generative synthesis, enabling more natural and intuitive human-computer interaction at scale.

Responsibilities

Design and implement novel multi-modal architectures that fuse vision, language, and temporal signals for holistic human understanding
• Develop and train Vision-Language Models (VLMs) for tasks including visual question answering, image-text reasoning, and grounded human-centric understanding
• Build video foundation models capable of temporal reasoning, action synthesis and long-form video synthesis with applications to human behavior synthesis
• Research generative synthesis techniques for human-centric content including video generation, motion synthesis, and multi-modal content creation
• Conduct rigorous experiments to evaluate model performance across diverse benchmarks, analyze failure modes, and iterate on architectures to improve accuracy and generalization
• Contribute to the full research lifecycle from problem formulation and dataset curation through model development and evaluation

Minimum Qualifications
• Currently has, or is in the process of obtaining a Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience. Degree must be completed prior to joining Meta
• 2+ years of experience in multi-modal AI research, including hands-on work with Vision-Language Models, video understanding, or human-centric AI systems
• 2+ years of experience implementing and training large-scale neural networks using frameworks such as PyTorch, with experience on transformer-based architectures
• Experience designing and executing experiments to evaluate multi-modal model performance, including quantitative analysis across vision, language, and video benchmarks
• Experience writing production-quality or research-quality code in Python for multi-modal AI applications

Preferred Qualifications
• Experience developing or fine-tuning Vision-Language Models for human understanding tasks
• Experience with video foundation models, temporal transformers, or large-scale video pretraining
• Track record of contributing to published multi-modal AI research at venues such as CVPR, ICCV, or NeurIPS
• Experience with generative models for human synthesis including diffusion models, GANs, or autoregressive models for video or motion generation

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