Question
FULL_TIME
2-5

Junior Research Scientist (VLAs)

12/20/2025

The Junior Research Scientist will design and implement data preprocessing pipelines, train VLA models, and develop and evaluate models in both simulation and on physical robots. They will also analyze model performance and deploy VLA models onto real robotic platforms.

Working Hours

40 hours/week

Company Size

2-10 employees

Language

English

Visa Sponsorship

No

About The Company
AIRoA is a global and open initiative that integrates AI and robotics to develop foundation models and data ecosystems that enable robots to understand and interact with the real world. Our mission is to develop and promote open platforms and datasets for robotic foundation models, creating a shared infrastructure that empowers the next generation of intelligent and autonomous systems. We unite leading companies across IT, AI, and manufacturing industries with top universities and research institutions to share knowledge, data, and technology—fostering interdisciplinary collaboration and driving innovation. As AIRoA continues to expand its membership and global partnerships, we are accelerating progress and collectively shaping the future of AI-driven robotics.
About the Role

About AIRoA

The AI Robot Association (AIRoA) is launching a groundbreaking initiative: collecting one million hours of humanoid robot operation data with hundreds of robots, and leveraging it to train the world’s most powerful Vision-Language-Action (VLA) models.

What makes AIRoA unique is not only the unprecedented scale of real-world data and humanoid platforms, but also our commitment to making everything open and accessible. We are building a shared “robot data ecosystem” where datasets, trained models, and benchmarks are available to everyone. Researchers around the world will be able to evaluate their models on standardized humanoid robots through our open evaluation platform.

For researchers, this means an opportunity to:

- Work on fundamental challenges in robotics and AI: multimodal learning, tactile-rich manipulation, sim-to-real transfer, and large-scale benchmarking.

- Access state-of-the-art infrastructure: hundreds of humanoid robots, GPU clusters, high-fidelity simulators, and a global-scale evaluation pipeline.

- Collaborate with leading experts across academia and industry, and publish results that will shape the next decade of robotics.

- Contribute to an initiative that will redefine the future of embodied AI—with all results made open to the world.

As we prepare for our official launch on October 1, 2025, we are assembling a world-class team ready to pioneer the next era of robotics.

We invite ambitious researchers and engineers to join us in this bold challenge to rewrite the history of robotics.

Job Description

In this role, you will be responsible for:

- Design and implement data preprocessing pipelines for multimodal robot datasets

- Train VLA models using supervised learning, RL, fine-tuning, RLHF, and training from scratch

- Develop and evaluate models in both simulation and on physical robots

- Improve training robustness and efficiency through algorithmic innovation

- Analyze model performance and propose enhancements based on empirical results

- Deploy VLA models onto real humanoid and mobile robotic platforms

- Publish research in top-tier conferences (e.g., NeurIPS, CoRL, CVPR)

Required Qualifications

(All of the following qualifications must be met)

- MS degree with 3+ years of industry experience, or PhD in Computer Science, Electrical Engineering, or a related field.

- Have at least one first-author publication in a top-tier conference such as CoRL, ICML, CVPR, NeurIPS, IROS, ICLR, ICCV, or ECCV.

- Experience with open-ended learning, reinforcement learning, and frontier methods for training LLMs/VLMs/VLAs such as RLHF and reward function design

- Experience working with simulators or real-world robots

- Knowledge of the latest advancements in large-scale machine learning research

- Experience with deep learning frameworks such as PyTorch

Preferred Qualifications

- PhD or equivalent research experience in robot learning.

- Practical experience implementing advanced control strategies on hardware, including impedance control, adaptive control, force control, or MPC.

- Experience using tactile sensing for dexterous manipulation and contact-rich tasks.

- Familiarity with simulation platforms and benchmarks (e.g., MuJoCo, PyBullet, Isaac Sim) for training and evaluation.

- Proven track record of achieving significant results as demonstrated by publications at leading conferences in Machine Learning (NeurIPS, ICML, ICLR), Robotics (ICRA, IROS, RSS, CoRL), and Computer Vision (CVPR, ICCV, ECCV)

- Strong end-to-end system building and rapid prototyping skills

- Experience with robotics frameworks like ROS

There are currently no comparable projects in the world that collect data and develop foundation models on such a large scale. As mentioned above, this is one of Japan’s leading national projects, supported by a substantial investment of 20.5 billion yen from NEDO.

This position will play a crucial role in determining the success of the project. You will have broad discretion and responsibility, and we are confident that, if successful, you will gain both a great sense of achievement and the opportunity to make a meaningful contribution to society.

Furthermore, we strongly encourage engineers to actively build their careers through this project—for example, by publishing research papers and engaging in academic activities.

●Work location

Tokyo Ryutsu Center A Bldg. AW4-5, 6-1-1 Heiwajima, Ota-ku, Tokyo 143-0006, Japan

Key Skills
Data PreprocessingMultimodal LearningReinforcement LearningSupervised LearningModel EvaluationAlgorithmic InnovationDeep LearningRoboticsSimulationTactile SensingControl StrategiesRapid PrototypingROSGPU ClustersHumanoid RobotsLarge-Scale Benchmarking
Categories
EngineeringScience & ResearchTechnology
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