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AMI Scientist

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  • open for 118 days (90+ without a fill is a strong ghost signal)
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About the role

About AMI

We are building a new breed of AI systems that (1) understand the real world, (2) have persistent memory, (3) can reason and plan, and (4) are controllable and safe.

We are a team of scientists and engineers building frontier world model-based AI. We combine the scientific rigor of a top-tier research institute with focus on engineering excellence and execution.

We are a global company, with offices in Paris, Montreal, New York, and Singapore. Come build the future of AI with us!

About this Role

AMI believes AI agents should predict and plan using an internal model of the world — their world model. We’re looking for new team members to advance the state-of-the-art in world modeling. We believe that video is a rich and abundant source of data reflecting how the world works, and that in general models need to be able to process continuous, high-dimensional data from a variety of sensors to: (a) understand context about the current state of the physical world, (b) make predictions about how the world will evolve, possibly as a result of actions taken, and (c) plan and adapt sequences of actions to complete complex tasks, possibly in dynamic, complex environments.

You will work with a team on world model research efforts, including:

Self-supervised learning methods to efficiently learn from video and other continuous, high-dimensional signals

New architectures that efficiently learn to predict world dynamics from video and other high-dimensional signals

Scalable algorithms for pre-processing and curating video data

Evaluations for benchmarking world model understanding, prediction, and planning

Efficient algorithms for model-based planning and reasoning

Minimum Qualifications

Bachelor’s degree or equivalent experience in Computer Science or a related field

Proficiency in Python

Ability to design, run, and analyze experiments independently

Understanding of machine learning fundamentals, large-scale training, and accelerator-based (GPU or TPU) compute environments

Preferred Qualifications

Deep expertise in at least one of the following: self-supervised learning, video and multimodal model architectures, planning algorithms

Demonstrated record of contributing to advanced research projects via publications and/or major model releases

Experience developing evaluation frameworks for world models

Experience releasing and maintaining open-source projects

Proficiency in a deep learning framework (PyTorch or JAX)

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