Thursday, October 30, 2025
AIRoA (AI Robot Association)

MLOps Engineer

Posted: 11 hours ago

Job Description

About AIRoAThe 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 benchmarkingAccess state-of-the-art infrastructure: hundreds of humanoid robots, GPU clusters, high-fidelity simulators, and a global-scale evaluation pipelineCollaborate with leading experts across academia and industry, and publish results that will shape the next decade of roboticsContribute to an initiative that will redefine the future of embodied AI—with all results made open to the worldKey ResponsibilitiesDesign, implement, and maintain large-scale ML pipelines and optimize model performance for training on massive robot datasetsDesign, deploy, and maintain distributed training clusters to reduce model development cyclesCollaborate closely with VLA researchers to capture evolving ML infrastructure, data pre-processing, training, monitoring, evaluation, and deployment requirements and continuously improve ML pipeline through analysis and experimentationOptimize ML infrastructure and pipeline for cost, performance, and reliabilityDesign, develop, and maintain MLOps tools and platforms to ensure VLA researchers can efficiently visualize and analyze the performanceRequirementsRequired QualificationsMaster's degree in Computer Science, Engineering, or a related field (or equivalent practical experience)3+ years of professional experience as a software engineer in MLOps engineering, machine learning, or roboticsExperience developing high-quality, production-level software in a team environmentExperience in deploying distributed systems to popular cloud services such as AWS, GCP, AzureExperience in orchestration tools such as Airflow, Dagster, or KedroHigh proficiency in PythonHigh proficiency in PyTorch or JAXPreferred QualificationsExperience with training and fine-tuning techniques for RL, VLM, and VLA models, including distillation, supervised fine-tuning, and policy optimizationExperience in hyper-parameter optimizationExperience in distributed training frameworks and cluster management for deep neural network trainingDeep understanding of GPU memory management and optimization techniquesExperience in analyzing, monitoring, and managing data qualityExperience with processing robotics-related sensor data (e.g., RGB/Depth images, point clouds), including knowledge of image/signal processing, sensor fusion, and time synchronizationExperience with ROS/ROS2High proficiency in SQLExperience optimizing system performance using performance analysis toolsOthers (linguistic Qualification, Etc.)【Highly appreciated】English proficiency at business levelBenefitsThere 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.

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