Robotics Engineering Intern - Fall 2026

Posted 6 Days Ago
Be an Early Applicant
San Francisco, CA, USA
In-Office
50-65 Hourly
Internship
Artificial Intelligence • Computer Vision • Machine Learning • Software
The Role
Work on learning-based robotics systems, deploying models to physical hardware and simulators (Isaac Sim, MuJoCo), close the sim-to-real gap, perform hardware debugging and sensor calibration, and evaluate classical versus learning approaches to enable autonomous locomotion, navigation, and control.
Summary Generated by Built In

About Niantic Spatial

At Niantic Spatial, we’re building the future of physical AI. Powered by a proprietary database of over 30 billion posed images, our groundbreaking mapping technology unlocks a new dimension of interaction and spatial intelligence that helps both humans and machines better understand, represent, navigate, and engage with the real environment.

Our reconstruction technology captures environments with geometric accuracy and extreme detail from any standard camera, and our Visual Positioning System delivers precise positioning almost anywhere in the world. We serve customers across robotics, the public sector, and energy and industrial markets — building for the 80% of economic activity that takes place beyond our screens.

About the Role

As a Robotics Engineering Intern or Co-op at Niantic Spatial, you will work directly at the intersection of learning-based systems and physical hardware. You will work hands-on with physical hardware, push robots toward fully autonomous operation across locomotion, navigation, and control, and iterate rapidly based on real-world feedback.

What You’ll Work On

  • Robot Learning Systems — Design, implement, and deploy learning-based systems on physical robotic hardware, working across locomotion, navigation, and control to push robots toward full autonomy.

  • Sim-to-Real Deployment — Work across simulation environments (Isaac Sim, MuJoCo) and physical platforms, closing the sim-to-real gap and validating system behavior under real-world conditions.

  • Hardware Iteration — Debug hardware, perform sensor calibration, and fix edge cases under real deployment conditions

  • Approach Evaluation — Evaluate and weigh tradeoffs between classical robotics and learning-based methods, choosing the right tool for each problem and contributing to technical decision-making on the team.

What You’ll Bring

  • Currently enrolled in (or a recent graduate of) a BS, MS, or PhD in Robotics, Computer Science, Electrical Engineering, Mechanical Engineering, or a related field.

  • Strong proficiency in Python and modern deep learning frameworks (PyTorch or JAX).

  • Hands-on experience with simulation environments (Isaac Sim, MuJoCo) and physical robotic hardware.

  • Ability to work on-site full-time in San Francisco, CA for the duration of the program. Relocation or housing stipends are not included in this fall program.

Preferred Skills

  • Can take a robotics system from 0 to 1 and iterate quickly based on real world feedback.

  • Comfortable working with hardware - sensor calibration, hardware debugging, and fixing edge cases under tight deadlines.

  • Ability to weigh trade-offs between classical robotics and learning-based approaches

  • High intellectual curiosity and a focus on pushing systems beyond existing baselines.

  • Passionate about robotics and love what you do because you will be doing a lot of it.

Program Details

· Term — 12 to 16 weeks, full-time commitment.

· Location — 100% on-site in San Francisco, CA.

· Role Type — Open to undergraduate, masters, and PhD students, as well as co-op program participants.

Inclusive Application

We know the strongest candidates don’t always tick every box. If you’re excited about this role and believe you could do it well, we encourage you to apply even if your experience doesn’t match every qualification listed — you may be exactly who we’re looking for.

Equal Opportunity

Niantic Spatial is an equal opportunity employer. Individuals seeking employment at Niantic Spatial are considered without regard to race, color, ancestry, national origin, religion, creed, age, gender (including pregnancy, childbirth, breastfeeding or related medical conditions), marital status, physical or mental disability, medical condition, genetic information, military or veteran status, gender identity, gender expression, sexual orientation, or any other protected category under applicable laws. Niantic Spatial will also consider qualified applicants with criminal histories in accordance with applicable laws. Please contact your recruiter if you want to request an accommodation for the job application or interview process.

Candidate Privacy

I understand that by submitting my job application, the information I provide as part of that application will be used in accordance with Niantic Spatial’s Privacy Notice for Job Applicants and Candidates https://www.nianticspatial.com/applicant-privacy-notice.

Skills Required

  • Currently enrolled in or recent graduate of a BS, MS, or PhD in Robotics, Computer Science, Electrical Engineering, Mechanical Engineering, or related field.
  • Strong proficiency in Python.
  • Experience with modern deep learning frameworks (PyTorch or JAX).
  • Hands-on experience with simulation environments (Isaac Sim, MuJoCo).
  • Experience with physical robotic hardware and on-device deployment.
  • Ability to work on-site full-time in San Francisco, CA for the program duration.
  • Ability to take a robotics system from 0 to 1 and iterate quickly based on real-world feedback.
  • Comfortable with hardware sensor calibration, hardware debugging, and fixing edge cases.
  • Ability to weigh trade-offs between classical robotics and learning-based approaches.
  • High intellectual curiosity and strong passion for robotics.
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The Company
182 Employees
Year Founded: 2025

What We Do

Niantic Spatial is building a living model of the world for machines, developing a geospatial AI model to understand and digitally map the physical world through spatial foundation and large geospatial models.

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