Machine Learning Staff Engineer – ADAS Online

United States Digital Space LLC

Berlin

Vor Ort

EUR 120.000 - 180.000

Vollzeit

14 Tage+
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Benefits dieser Stelle

Development budget
Learning days
Learning resources
Hybrid work

Zusammenfassung

United States Digital Space LLC seeks an ML Staff Engineer to lead the technical direction of physical AI algorithms for 3D scene understanding and environmental awareness. You will stay hands-on in model design, experimentation, and performance improvements while mentoring a small, high-velocity team.

You will work on a spatial awareness stack that fuses camera, LiDAR, and RADAR data into 3D maps, driving end-to-end ML solutions and research-to-prod transitions.

Qualifikationen

  • 7+ years of experience in machine learning, vision transformers, diffusion, or computer vision.
  • Deep expertise in modern deep learning architectures.
  • Strong hands-on experience with PyTorch (or equivalent frameworks).
  • Proven experience building and iterating on large-scale ML models.
  • Strong mathematical foundations in optimization and probabilistic modeling.
  • Track record of delivering measurable improvements in ML system performance.
  • Experience guiding technical decisions within a small engineering team.

Aufgaben

  • Define and drive the technical direction for physical AI algorithms.
  • Define and execute on a technical roadmap towards state-of-the-art reinforcement learning using physical AI world models.
  • Design, implement, and improve ML / vision transformer models for 3D awareness and planning.
  • Architect multi-modal fusion approaches (camera, LiDAR, RADAR) to build 3D environments.
  • Per the roadmap, identify where larger end-to-end models should replace more traditional approaches.
  • Apply advanced ML techniques (Transformers, representation learning, large-scale models) to improve perception performance.
  • Lead structured experimentation and benchmarking to deliver measurable gains in accuracy and robustness.
  • Translate research ideas into reliable, scalable ML solutions.
  • Provide technical guidance and mentorship to perception engineers.

Kenntnisse

Machine learning
Vision transformers
PyTorch
Large-scale ML models
Optimization

Tools

Unity 3D
BEV tooling

Jobbeschreibung

We are building a high-performance ADAS Online team focused on advancing state-of-the-art machine learning and AI algorithms for scene understanding and environmental awareness. As ML Staff Engineer, you will drive the algorithmic direction of our present and future in-vehicle spatial awareness stack while remaining deeply hands‑on in model design, experimentation, and performance improvement. You will contribute as a senior technical authority and mentor within a small, high‑velocity team.

This spatial awareness stack will leverage modern transformer and end‑to‑end architectures to transform vehicle sensor data along with real‑time 3D map data from the cloud into a 3D, semantically defined environment identifying all static and dynamic objects. This is a high‑ownership technical role in a fast‑moving, data‑driven AI environment.

What You’ll Do
  • Define and drive the technical direction for physical AI algorithms
  • Define and execute on a technical roadmap towards state‑of‑the‑art reinforcement learning using physical AI world models.
  • Design, implement, and improve ML / vision transformer models for 3D awareness and planning. These include Gaussian Splatting (3DGS), Diffusion, object detection, multi‑object tracking, semantic segmentation, and occupancy modeling
  • Architect multi‑modal fusion approaches (camera, LiDAR, RADAR) to build 3D environments
  • Per the roadmap, identify where larger end‑to‑end models should replace more traditional approaches
  • Apply advanced ML techniques (Transformers, representation learning, large‑scale models) to improve perception performance
  • Lead structured experimentation and benchmarking to deliver measurable gains in accuracy and robustness
  • Translate research ideas into reliable, scalable ML solutions
  • Provide technical guidance and mentorship to perception engineers
What You’ll Need
  • 7+ years of experience in machine learning, vision transformers, diffusion, or computer vision
  • Deep expertise in modern deep learning architectures
  • Strong hands‑on experience with PyTorch (or equivalent frameworks)
  • Proven experience building and iterating on large‑scale ML models
  • Strong mathematical foundations in optimization and probabilistic modeling
  • Track record of delivering measurable improvements in ML system performance
  • Experience guiding technical decisions within a small engineering team
What's Nice to Have
  • Experience in autonomous systems or robotics perception
  • Publications or patents in machine learning or perception
  • Experience with 3D data representations (gaussian spatting, point clouds, BEV, voxel grids) and 3D engines like Unity
  • Familiarity with large‑scale training or foundation models
  • Experience mentoring engineers in advanced ML topics
What we offer

A competitive compensation package, of course. Time and resources to grow and develop, including a personal development budget and paid leave for learning days, as well as paid access to e‑learning resources such as O’Reilly and LinkedIn Learning.Time to support life outside of work, with enhanced parental leave plus paid leave to care for loved ones and volunteer in local communities.Work flexibility, where the company’ers, in agreement with their manager and team, use both the office and home to focus, collaborate, learn and socialize. It’s all about getting the best out of both worlds –we ask the company’ers to come to the office two days a week, and the remaining three are free to be worked in either location.Improve your home office with a setup budget and get extra support with a monthly allowance.Enjoy options to work from your home country and abroad for a set number of days each year, to visit family and friends, or to simply explore the world we’re mapping. Take the holidays you want with a competitive holiday plan, plus an extra day off to celebrate your birthday.Join annual events like our Hackathon and DevDays to bring your ideas to life with talented teammates from around the world.Become a part of our inclusive global culture and have the chance to collaborate with a diverse community – we have over 80 nationalities at the company!Find out more aboutour global benefits and enjoy additional local benefits tailored to your location.

Meet your team

We are the ADAS & ADS Product Unit, leading the production of the company’s HD maps and ADAS technology.In a diverse team of applied scientists, engineers, data scientists, and more, equipped with a broad array of expertise, you’ll collaborate on groundbreaking location‑based technologies and applications. More specifically, you’ll be at the forefront of the creation of advanced HD maps. You’ll also help update these in real‑time, ensuring our maps are pushing the world forward instantly. These maps will then go on to empower the largest car manufacturers, transportation giants, and major tech companies around the world.

At the company

You’ll help people find their way in the world. In 2004, the company revolutionized how the world moves with the introduction of the first portable navigation device. Now, we intend to do it again by engineering the first‑ever real‑time map, the smartest and most useful map on the planet.Work with a team of 3,300+ unique, curious and passionate problem‑solvers. Together, we’ll open up a world of possibilities for car manufacturers, enterprises and developers to help people understand and get closer to the world around them.

the company is an equal opportunity employerthe company is where you can find your place in the world. Every day we welcome, nurture and celebrate differences. Why? Because your uniqueness is what makes you, you. No matter your culture or background, you’ll find your impact at the company.Research also shows that sometimes women and underrepresented communities can be hesitant to apply for positions unless they believe they meet 100% of the criteria. If you can relate to this, please know that we’d love to hear from you.

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