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XPENG is seeking a full-time Machine Learning Engineer / Research Scientist in Santa Clara to build the Vision-Language-Action foundation model powering the next generation of L3/L4 autonomous driving systems.
You will design and train large-scale multi-modal architectures, leverage massive fleet data, and collaborate with perception, planning, and infra teams to deploy production-ready models with robust performance.
XPENG is a leading smart technology company at the forefront of innovation, integrating advanced AI and autonomous driving technologies into its vehicles, including electric vehicles (EVs), electric vertical take‑off and landing (eVTOL) aircraft, and robotics. With a strong focus on intelligent mobility, XPENG is dedicated to reshaping the future of transportation through cutting‑edge R&D in AI, machine learning, and smart connectivity.
We are looking for a full‑time Machine Learning Engineer / Research Scientist to drive the modeling and algorithmic development of XPENG’s next‑generation Vision‑Language‑Action (VLA) Foundation Model — the core brain that powers our end‑to‑end autonomous driving systems.
You will work closely with world‑class researchers, perception and planning engineers, and infrastructure experts to design, train, and deploy large‑scale multi‑modal models that unify vision, language, and control. Your work will directly shape the intelligence that enables XPENG’s future L3/L4 autonomous driving products.
The base salary range for this full‑time position is $174,720 – $295,680, in addition to bonus, equity and benefits. Our salary ranges are determined by role, level, and location. The range displayed on each job posting reflects the minimum and maximum target for new hire salaries for the position across all US locations. Within the range, individual pay is determined by work location and additional factors, including job‑related skills, experience, and relevant education or training.
We are an Equal Opportunity Employer. It is our policy to provide equal employment opportunities to all qualified persons without regard to race, age, color, sex, sexual orientation, religion, national origin, disability, veteran status or marital status or any other prescribed category set forth in federal or state regulations.