Machine Learning Intern, Perception (End-to-end)
Job Description
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Mission Summary:
We are looking for a Machine Learning Research Intern to work on end-to-end autonomous driving, with a focus on learning-based models that connect perception, reasoning, prediction, and action. The research direction may include Vision-Action models, Vision-Language-Action models, world models, world-action models, and other foundation-model-inspired approaches for autonomous driving. This role involves literature review, model prototyping, experiment design, evaluation, and analysis.
The internship will take place in our Singapore office and we expect a full-time internship period of at least 5 months. We offer flexible working hours and allow for remote work. The candidate will however have to live in Singapore for the duration of the internship.
Responsibilities:
- Conduct research on end-to-end autonomous driving models, including Vision-Action models, Vision-Language-Action models, world models, world-action models, and related approaches
- Explore learning-based approaches that connect perception, scene understanding, future prediction, decision-making, and driving action generation
- Prototype, train, and evaluate models using multi-modal autonomous driving data, including images, videos, LiDAR, radar, maps, ego-motion, trajectories, and driving logs
- Investigate different learning paradigms, such as imitation learning, reinforcement learning, generative modeling, or hybrid learning-based planning
- Analyze model performance, robustness, generalization, and failure cases in complex driving scenarios
- Document research ideas, model designs, experiment results, and key findings in clear and reproducible formats
- Contribute to technical reports, invention disclosures, patent applications, and research paper writing and submission
Required Skills:
- Currently pursuing a Master’s or PhD degree in Computer Science, Machine Learning, Robotics, Electrical Engineering, or a related field
- Research experience in at least one of the following areas: computer vision, sequence modeling, imitation learning, reinforcement learning, robotics, planning, or autonomous driving
- Proficient in Python and/or C++
- Proficient with deep learning frameworks such as PyTorch or TensorFlow
- Experience conducting research-oriented experiments, including model training, evaluation, ablation studies, and result analysis
- Experience working with structured or unstructured data, such as images, videos, point clouds, trajectories, maps, or sensor logs
- Strong problem-solving skills and ability to communicate research ideas and experimental findings clearly
Preferred Skills:
- Research or project experience in autonomous driving, robotics, embodied AI, or learning-based planning
- Experience with end-to-end autonomous driving, Vision-Action models, Vision-Language-Action models, world models, or world-action models
- Familiarity with imitation learning, reinforcement learning, or generative modeling
- Familiarity with autonomous driving datasets, benchmarks, or simulators such as nuScenes, Waymo Open Dataset, Argoverse, NAVSIM, CARLA, or related frameworks
- Experience with large-scale model training, distributed training, or efficient fine-tuning
- Publications, open-source contributions, or strong research projects in relevant areas are a plus
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Motional
View Company ProfileMotional (operating via motional.com) is a premier autonomous vehicle technology enterprise engineered to make driverless vehicles a safe, reliable, and accessible reality. Founded in 2020 as a groundbreaking joint venture between vehicle manufacturing leader Hyundai Motor Group and automotive technology expert Aptiv, and headquartered in Boston, Massachusetts, the company fundamentally changes how the world moves. Moving far beyond traditional automotive manufacturing, Motional natively unifies advanced machine learning, robust software platforms, and rigorous safety frameworks into a single, cohesive ecosystem for autonomous ride-hailing and delivery services. The platform empowers mobility networks like Uber and Lyft to seamlessly integrate fully driverless robotaxis—specifically the all-electric IONIQ 5—into everyday transportation. Under the hood, their sophisticated technology leverages continuous spatial-aware vision models and reasoning-centric datasets to navigate complex, long-tail urban scenarios safely, ensuring vehicles are never drowsy, drunk, or distracted. Capturing massive industry presence with live commercial operations in major cities like Las Vegas, Motional remains a definitive cornerstone of the modern mobility landscape, driving the future of smart, autonomous transportation.
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