Position Summary

Our mission is to make robotics an irreversible reality. We are always interested in connecting with talented Foundation Model Engineers who are passionate about building the AI that powers real-world robots.

As the Robotics Engineer, Foundation Model, you will design, train, and deploy large-scale multimodal models that integrate vision, language, and action components for real-world robotic applications. Leveraging data from our teleoperation systems, you will create generalizable policies for our robots to perform complex tasks autonomously and reliably—beyond lab-scale or proof-of-concept demos. You will guide the end-to-end pipeline, from data processing and model design to on-robot deployment and performance optimization.

This is an open role intended for engineers at wide experience levels, from mid-career engineers to experienced technical leaders.

What You'll Work On

  • Design, train, and fine-tune large-scale foundation models (multimodal, transformer-based, and/or Vision-Language-Action models) for robotic perception, reasoning, and control.

  • Build and maintain data and training pipelines, including data collection from teleoperation, preprocessing, annotation, and distributed training at scale.

  • Collaborate with robotics, controls, and hardware engineers to integrate models into real robot systems and evaluate them in production environments.

  • Design experiments and evaluation protocols to measure model performance, safety, and reliability, and iterate based on real-world deployment feedback.

  • Optimize models for efficient inference and deployment on embedded/edge hardware.

  • Track developments in foundation models, LLMs, multimodal and generative AI research, and assess their applicability to TX's products.

What We're Looking For

  • Background in Machine Learning, Computer Science, Robotics, or a related field.

  • Professional experience in machine learning or deep learning engineering, or equivalent research/graduate experience.

  • Hands-on experience training, fine-tuning, or serving large-scale models, e.g. LLMs, vision-language models, diffusion models, or other multimodal/foundation models.

  • Strong software engineering skills in Python and experience with a deep learning framework (PyTorch preferred).

  • Familiarity with large-scale/distributed training and modern ML infrastructure or MLOps practices.

  • Strong problem-solving skills and ability to work in cross-functional teams.

Preferred Experience

    Experience in one or more of the following areas:

  • Robotics (ROS/ROS2), reinforcement learning, or embodied AI

  • Vision-Language-Action (VLA) or other multimodal foundation models

  • Deploying models to edge devices such as NVIDIA Jetson

  • Computer vision, NLP, or generative modeling research

  • Control theory, teleoperation systems, or actuator/hardware integration

  • Publications, open-source contributions, or a portfolio of applied ML/AI work

Why Join Us

You will have the opportunity to work on foundation models that don't just predict text or images but move real robots in real stores and warehouses, collaborating with multidisciplinary teams to bring next-generation physical AI from prototype to real-world deployment.

We welcome applications from engineers at wide career stages. The scope and level of responsibility will be aligned with your experience and expertise.

Language

  • Professional proficiency in English required.

  • Japanese language skills are a plus.


Robotics Engineer, Foundation Model

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