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职位Nuro

ML Research Scientist, Prediction & Smart Agents

Nuro

ML Research Scientist, Prediction & Smart Agents

Nuro

Mountain View, California (HQ)

·

On-site

·

Full-time

·

1mo ago

薪酬

$193,930 - $291,150

福利待遇

Equity

401(k)

必备技能

Python

Machine Learning

Sequential decision-making

Prediction

Generative modeling

Who We Are

Nuro is a self-driving technology company on a mission to make autonomy accessible to all. Founded in 2016, Nuro is building the world’s most scalable driver, combining cutting-edge AI with automotive-grade hardware. Nuro licenses its core technology, the Nuro Driver™, to support a wide range of applications, from robotaxis and commercial fleets to personally owned vehicles. With technology proven over years of self-driving deployments, Nuro gives the automakers and mobility platforms a clear path to AVs at commercial scale, empowering a safer, richer, and more connected future.

About the Role

The mandate of the prediction team is to use advanced machine learning techniques to improve the behavior of the Nuro Driver.

As a key member of the Prediction and Smart Agents team, you will focus on building state-of-the-art models for predicting the behavior of surrounding traffic. These models are crucial for our autonomous system, as they will be deployed onboard as part of our planning stack and used offboard for realistic closed-loop simulation.

You will explore novel machine learning methods to solve challenging real-world problems in autonomous driving. This work includes using generative sequence modeling approaches for robustly predicting complex, interactive traffic situations. It requires deep reasoning about the intentions of other road users and how their behaviors influence safe and correct driving decisions. You will also use different input modalities, including End-to-End (E2E) approaches, for predicting other agents. A vital component of this role is building smart, controllable agents to enable effective closed-loop training in simulation.

If you are passionate about solving challenging new problems, leading impactful research, and seeing your work deployed onto real robots, we encourage you to apply!

About the Work:

  • Design and build scalable, machine learning-based prediction systems to generate multi-modal, realistic, and kinematically feasible trajectories.

  • Conduct cutting-edge research in generative sequence modeling and sequential decision-making. Areas of interest include, but are not limited to:

  • Scalable generative sequence modeling approaches.

  • Marginal, conditional, and joint distribution modeling for interactive agents.

  • Transformer-based encoder-decoder architectures.

  • Large generative models and diffusion models.

  • Controllability of agents via conditioning, guidance, and other techniques.

  • Collaborate closely with the Planning team to design realistic and controllable agents for closed-loop simulation, enabling agent training via Reinforcement Learning (RL).

  • Mitigate accumulated uncertainties across interconnected autonomy components.

  • Collaborate across various autonomy teams to develop holistic solutions for top challenges, proposing ideas, prioritizing.

  • Derive practical, deployable solutions and see them deployed on real-world vehicles

About You

You have deep expertise and prior experience in some or many of the following areas:

  • Education: You have an M.Sc. or Ph.D. (preferable) focusing on one or more of the following areas: Computer Science, Artificial Intelligence, Mathematics, or a closely related field

  • Expertise: Subject matter expertise and research experience in one or more of the following: sequential decision-making, prediction, Imitation Learning, Deep Reinforcement Learning, generative modeling, large models (pretraining/finetuning), or machine learning for robotics.

  • Technical Skills: You have strong problem solving and programming skills in Python (required) and C++ (beneficial) and ML frameworks such as Py Torch.

  • Collaboration: Strong culture fit and good team player.

  • Experience: You have 2+ years of deploying machine learning systems onboard, ideally in the area of prediction.

  • Publications: Demonstrated research publications in top conferences (e.g. NeurIPS, ICLR, ICML, CVPR, RSS, CoRL, ICRA, IROS etc.)

Nice to have: Deep background in Embodied AI for robotics, Causal reasoning, Model interpretability and explainability, Joint prediction and planning, Understanding of Diffusion Models.

At Nuro, your base pay is one part of your total compensation package. For this position, the reasonably expected base pay range is between $193,930 and $291,150 for the level at which this job has been scoped. Your base pay will depend on several factors, including your experience, qualifications, education, location, and skills. In the event that you are considered for a different level, a higher or lower pay range would apply. This position is also eligible for an annual performance bonus, equity, and a competitive benefits package.

*At Nuro, we celebrate differences and are committed to a diverse workplace that fosters inclusion and psychological safety for all employees. Nuro is proud to be an equal opportunity employer and expressly prohibits any form of workplace discrimination based on race, color, religion, gender, sexual orientation, gender identity or expression, national origin, age, genetic information, disability, veteran status, or any other legally protected characteristics. *

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关于Nuro

Nuro

Nuro

Series B

Focused on licensing its proprietary Level 4 driving system, Nuro Driver, to automakers and mobility providers.

51-200

员工数

Mountain View

总部位置

$8.6B

企业估值

评价

3.8

10条评价

工作生活平衡

3.2

薪酬

4.0

企业文化

4.1

职业发展

3.5

管理层

3.4

65%

推荐给朋友

优点

Good team environment and colleagues

Flexible work arrangements

Competitive compensation and benefits

缺点

Work-life balance challenges and long hours

Management and communication issues

Limited career advancement opportunities

薪资范围

68个数据点

Mid/L4

Senior/L5

Mid/L4 · DATA SCIENTIST

1份报告

$234,000

年薪总额

基本工资

$180,880

股票

-

奖金

-

$234,000

$234,000

面试经验

4次面试

难度

3.3

/ 5

时长

14-28周

面试流程

1

Application Review

2

Recruiter Screen

3

Technical Phone Screen

4

Onsite/Virtual Interviews

5

Team Matching

6

Offer

常见问题

Coding/Algorithm

System Design

Behavioral/STAR

Technical Knowledge

Past Experience