PlusAI
PlusAI
Posted 3 months ago
Internship
Santa Clara, California
In Person
Smart Summary
Responsibilities
Develop a translation layer to bridge the sim-to-real gap by converting simulator ground truth into realistic BEV embeddings. Implement a shortcut pipeline for BEV feature generation and integrate it into a self-play RL training framework.
Qualifications
You have a strong foundation in deep learning, computer vision, and machine learning, with proficiency in Python and PyTorch. You also have prior experience with Bird's-Eye View (BEV) / End-to-End (E2E) Autonomous Driving Architectures and addressing the Sim-to-Real Gap in autonomous systems.
Must Have Skills for ATS
deep learning
computer vision
machine learning
Python
PyTorch
BEV
E2E Autonomous Driving Architectures
Sim-to-Real Gap
Job Description
PlusAI is a Physical AI company pioneering AI-based virtual driver software for factory-built autonomous trucks. Headquartered in Silicon Valley with operations in the United States and Europe, Plus was named by Fast Company as one of the World’s Most Innovative Companies. Partners including TRATON GROUP’s Scania, MAN, and International brands, Hyundai Motor Company, Iveco Group, Bosch, and DSV are working with Plus to accelerate the deployment of next-generation autonomous trucks. If you’re ready to make a huge impact and drive the future of autonomy, Plus is looking for talented individuals to join its fast-growing teams.
This project addresses the sim-to-real gap as in our current simulator pipeline. Closed-loop simulation systems are highly effective at generating massive amounts of diverse, high-fidelity ground truth data. However, they assume perfect perception. However, this ideal GT data does not perfectly align with the BEV feature representations extracted from real-world, noisy sensor data.
The project provides two outcomes:
Bridge Sim-to-Real Gap in Data Augmentation with Closed-Loop Simulation: By translating simulation GTs into a realistic BEV embedding space, the synthetic data becomes directly usable for training and fine-tuning BEV-based planning models.
Allow BEV Space Planning Model to be directly fine-tunable via Self-play RL: Once the sim-to-real gap is bridged in the BEV feature space, the planning models can thus be directly finetuned / post-trained in a self-play RL setting.
Your opportunities joining PlusAI
Work, learn and grow in a highly future-oriented, innovative and dynamic field.
Wide range of opportunities for personal and professional development.
Catered free lunch, unlimited snacks and beverages.
Highly competitive salary and benefits package, including 401(k) plan.
PlusAI
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