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Senior Machine Learning Researcher

At Toyota Research Institute (TRI), we’re on a mission to improve the quality of human life. We’re developing new tools and capabilities to amplify the human experience. To lead this transformative shift in mobility, we’ve built a world-class team in Energy & Materials, Human-Centered AI, Human Interactive Driving, Large Behavioral Models, and Robotics.



The Discover, Nurture, and Adopt (DNA) division at TRI focuses on enabling innovation and transformation at Toyota by building a bridge between TRI research and Toyota products, services, and needs. We achieve this through partnership, collaboration, and shared commitment. DNA is leading a new cross-organizational project between TRI and Woven by Toyota to research and develop a fully end-to-end learned automated driving / ADAS stack. This cross-org collaborative project is synergistic with TRI’s robotics divisions' efforts in Diffusion Policy and Large Behavior Models (LBM).



We are looking for a Machine Learning Researcher to join us in developing a state-of-the-art, pixels-to-action, end-to-end system for automated driving. As an expert in machine learning, you will contribute to designing and developing innovative models for our autonomy stack and deploying them on vehicle platforms to solve daily driving tasks and handle long-tail scenarios.



An ideal candidate has a strong track record of leading independent research efforts, preferably including mentoring and collaborating with less experienced students and researchers. You will help to drive our exploration into end-to-end learning approaches for automated driving, using large-scale sensor data directly for perception, planning, and prediction to overcome traditional "information bottlenecks." This includes expanding our successful Large Behavior Model (LBM) robotics efforts and Diffusion Policy (DP) research into the driving domain, designing scalable architectures, and integrating visual-language-action modalities. Beyond refining models for closed-loop driving on public roads and in simulation, you will also explore data quality filtering, transfer learning from diverse data sources, and edge deployment optimization. This work is part of Toyota’s global AI efforts to build a more coordinated global approach across Toyota entities.


Responsibilities
  • Conduct ambitious research to advance the state-of-the-art in using new capabilities in generative AI (e.g., recent results in diffusion policy [1],[2]) for end-to-end perception, planning, and prediction in automated driving with a focus on computer vision as the primary sensing modality.
  • Research and implement scalable end-to-end architectures that process raw sensor data to generate vehicle trajectories, addressing the challenges of long-tail driving scenarios with low data coverage.
  • Prototype, validate, and iterate model architectures using imitation learning and large-scale data, ensuring robust performance across diverse scenarios.
  • Perform closed-loop evaluations in sensor simulations and real-world testing environments to rigorously assess model performance, stability, and scalability.
  • Explore multi-modal and language-conditioned models to broaden the applicability of end-to-end policies, using external data sources and transfer learning to enhance generalization.
  • Collaborate with researchers and engineers across TRI, Woven by Toyota, and Toyota’s global ecosystem to accelerate model deployment and evaluation in both controlled environments (closed-course) and public road driving.
  • Take the lead on writing and publishing research results in peer-reviewed venues.


Qualifications
  • A PhD or equivalent experience in a robotics-relevant or embodied-AI field such as Computer Science, Mathematics, Physics, or Engineering.
  • A consistent track record of publishing at high-impact conferences/journals (CVPR, ICLR, NeurIPS, ICML, CoRL, RSS, ICRA, ICCV, ECCV, PAMI, IJCV, etc.)
  • A consistent track record of independent research.
  • Demonstrated ability to independently formulate and complete a research agenda while collaborating across subject areas.
  • Experience training large-scale models, including foundation models (e.g., vision-language models, text-to-video models).
  • Proficiency in Python and C++ for implementing and evaluating research ideas.


Bonus Qualifications
  • Experience with robot motion planning techniques like trajectory optimization, sampling-based planning, and model predictive control, or experience with automated driving domains (e.g., perception, prediction, mapping, localization, planning, simulation).
  • Experience in developing production-level code for real-time operating systems.
  • Experience optimizing runtime-critical systems for Linux, UNIX-like real-time operating systems on automotive-grade compute platforms, and building safety-critical software architectures.


Please add a link to Google Scholar and include a full list of publications when submitting your CV for this position.


The pay range for this position at commencement of employment is expected to be between $201,600 and $302,400/year for California-based roles; however, base pay offered may vary depending on multiple individualized factors, including market location, job-related knowledge, skills, and experience. Note that TRI offers a generous benefits package (including 401(k) eligibility and various paid time off benefits, such as vacation, sick time, and parental leave) and an annual cash bonus structure. Details of participation in these benefit plans will be provided if an employee receives an offer of employment.


Please reference this Candidate Privacy Notice to inform you of the categories of personal information that we collect from individuals who inquire about and/or apply to work for Toyota Research Institute, Inc. or its subsidiaries, including Toyota A.I. Ventures GP, L.P., and the purposes for which we use such personal information.


TRI is fueled by a diverse and inclusive community of people with unique backgrounds, education and life experiences. We are dedicated to fostering an innovative and collaborative environment by living the values that are an essential part of our culture. We believe diversity makes us stronger and are proud to provide Equal Employment Opportunity for all, without regard to an applicant’s race, color, creed, gender, gender identity or expression, sexual orientation, national origin, age, physical or mental disability, medical condition, religion, marital status, genetic information, veteran status, or any other status protected under federal, state or local laws.


It is unlawful in Massachusetts to require or administer a lie detector test as a condition of employment or continued employment. An employer who violates this law shall be subject to criminal penalties and civil liability. Pursuant to the San Francisco Fair Chance Ordinance, we will consider qualified applicants with arrest and conviction records for employment.

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What You Should Know About Senior Machine Learning Researcher, Toyota Research Institute

At Toyota Research Institute (TRI), we’re excited to invite a talented Senior Machine Learning Researcher to join our dynamic team in Los Altos, CA. If you're passionate about transforming mobility and improving the quality of human life through innovative technology, you'll fit right in with our mission. In this role, you’ll be at the forefront of research and development for state-of-the-art automated driving systems. You will have the opportunity to lead groundbreaking projects that bridge TRI’s research and Toyota’s practical applications. We’re delving into ambitious research endeavors, with a focus on generative AI, to enhance vehicle perception and decision-making models. As a Senior Machine Learning Researcher, you’ll collaborate with cross-functional teams, mentor rising talents, and help refine our models for real-world applications. Your expertise will be crucial in developing scalable architectures and exploratory learning approaches that ensure robust performance in challenging driving scenarios. Toyota is dedicated to fostering an inclusive and innovative atmosphere, where diversity is celebrated. You’ll contribute to a collaborative environment that empowers excellence and continuous learning, all while making a tangible impact in the automotive domain. If you have a strong research background and experience in machine learning, particularly with large-scale models, we’d love to see your application. Join us at TRI and take the next step in your career where cutting-edge research meets real-world application!

Frequently Asked Questions (FAQs) for Senior Machine Learning Researcher Role at Toyota Research Institute
What are the responsibilities of a Senior Machine Learning Researcher at Toyota Research Institute?

As a Senior Machine Learning Researcher at Toyota Research Institute, you will conduct ambitious research aimed at advancing generative AI capabilities for automated driving. Your responsibilities will include designing and implementing scalable end-to-end architectures and researching innovative models for perception, planning, and prediction. You'll also collaborate across various teams to refine these models, validate their performance through real-world testing, and lead on publishing impactful research findings.

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What qualifications are required for the Senior Machine Learning Researcher position at TRI?

Candidates for the Senior Machine Learning Researcher role at Toyota Research Institute should possess a PhD or equivalent experience in a relevant field such as Computer Science or Engineering. A strong publication record at high-impact conferences is essential, alongside demonstrated expertise in independent research and a solid foundation in machine learning, particularly in training large-scale models.

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How does the work of a Senior Machine Learning Researcher contribute to Toyota's mission?

At Toyota Research Institute, a Senior Machine Learning Researcher plays a vital role in shaping the future of mobility. By developing cutting-edge models and systems for automated driving, you contribute directly to improvements in safety and efficiency on our roads. Your research will aid in creating smarter, more responsive vehicles, aligning with Toyota's commitment to innovative solutions that enhance human life.

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What kind of experience is beneficial for the Senior Machine Learning Researcher position?

Experience with large-scale machine learning models, particularly in domains related to robotics and automated driving, is beneficial for the Senior Machine Learning Researcher role at TRI. Familiarity with robot motion planning techniques and production-level coding for real-time operating systems will also be advantageous. A unique combination of theoretical knowledge and practical implementation skills will position candidates for success in this role.

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What is the work environment like for a Senior Machine Learning Researcher at TRI?

The work environment for a Senior Machine Learning Researcher at Toyota Research Institute is vibrant and collaborative. You will be encouraged to share ideas, mentor junior researchers, and contribute to cross-organizational projects. TRI values diversity and innovation, promoting a culture where every team member can thrive and make substantial contributions to transformative research in automotive technology.

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Common Interview Questions for Senior Machine Learning Researcher
Can you describe your experience with large-scale machine learning models?

When discussing your experience with large-scale machine learning models, focus on specific projects where you developed or trained such models. Highlight the techniques you used, challenges faced, and how your work advanced the state-of-the-art. Be sure to emphasize the results and impact your models had in practical applications.

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How do you approach research and development in a collaborative environment?

In a collaborative environment, I embrace open communication and actively seek feedback from peers. I believe in establishing clear goals and roles, which facilitates collective problem-solving and innovation. Sharing knowledge and insights not only fosters teamwork but can also lead to breakthroughs that benefit the entire project.

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What methodologies do you use for testing and validating your models?

For testing and validating models, I utilize a combination of simulation environments and real-world testing. Rigorous evaluation of accuracy, stability, and performance is essential. I often apply techniques like cross-validation and A/B testing to ensure robustness across diverse scenarios, and I examine model performance indicators thoroughly.

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What has been your most significant research contribution?

Discuss a specific project where your research made a substantial impact. Highlight the problem you were addressing, the methods you applied, and any innovative techniques you introduced. Emphasize the results and how they contributed to the advancement of knowledge in the field, ideally with publications or practical applications as evidence.

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How do you stay current with advancements in machine learning?

I stay current with advancements in machine learning by regularly reading top-tier journals, participating in conferences, and engaging with online communities. Networking with other researchers and attending workshops allows me to exchange ideas and discover emerging trends and technologies that can inform my work.

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Can you explain your experience with transfer learning?

In discussing transfer learning experience, provide examples when you applied this technique to enhance model performance or reduce training time. Illustrate how you leveraged pre-trained models, adapting them to new contexts, and share quantifiable results that showcase improvements or efficiencies achieved through your approach.

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What challenges have you faced in your research, and how did you overcome them?

Describe a specific challenge you encountered in your research, whether it was technical, methodological, or collaborative. Detail the steps you took to address the issue, the solutions you implemented, and what you learned from the experience. This will demonstrate your resilience and problem-solving capabilities.

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How do you ensure that your models generalize well to real-world applications?

To ensure my models generalize well, I employ diverse datasets that incorporate various driving scenarios. I also focus on robust evaluation metrics and iterative testing in real-world situations. Continuous monitoring and adjustment based on performance feedback are crucial in maintaining model efficacy in practical deployment.

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What are your thoughts on the ethical implications of AI in automated driving?

Addressing ethical implications of AI in automated driving is essential. Share your views on safety, privacy, and accountability regarding automated systems. Discuss the importance of ethical guidelines in developing AI technologies and how they can coexist with innovations in transportation while ensuring public trust.

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Why do you want to work as a Senior Machine Learning Researcher at TRI?

Reflect on your enthusiasm for the intersection of research and practical applications that TRI embodies. Mention your alignment with Toyota's mission to improve human life and how the collaborative and innovative culture at TRI resonates with your professional values and aspirations.

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TRI's mission is to improve the quality of human life through advances in artificial intelligence, automated driving, and robotics.

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