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4

Physical AI Engineer

42dot
๐Ÿ‡ฐ๐Ÿ‡ท South Korea
Hybrid
1 month ago
  • AI
  • Machine Learning
  • Python
  • C++
  • Computer Vision
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About the Team & Mission

Physical AI Engineer๋Š” ์ฐจ์„ธ๋Œ€ ์ž์œจ์ฃผํ–‰์„ ์œ„ํ•œ End-to-End(E2E) Planning Model์„ ์„ค๊ณ„ยท๊ฐœ๋ฐœํ•˜๊ณ , ๋ชจ๋ธ์˜ ํ•™์Šตยท๊ฒ€์ฆ์„ ์œ„ํ•œ Closed-loop Simulation ํ™˜๊ฒฝ๊ณผ ํŒŒ์ดํ”„๋ผ์ธ์„ ๊ฐœ๋ฐœํ•ฉ๋‹ˆ๋‹ค.

Trajectory Generation๊ณผ Decision-making์„ ์ˆ˜ํ–‰ํ•˜๋Š” E2E Planning Model๋ถ€ํ„ฐ Closed-loop Simulation๊นŒ์ง€, ์ฃผํ–‰ ์ƒํ™ฉ์„ ๋ฐ”ํƒ•์œผ๋กœ ์•ˆ์ „ํ•œ ์˜์‚ฌ๊ฒฐ์ •๊ณผ trajectory๋ฅผ ์ƒ์„ฑํ•˜๋Š” ํ•ต์‹ฌ ๊ธฐ์ˆ ์„ ๊ฐœ๋ฐœํ•ฉ๋‹ˆ๋‹ค. Generative AI, Imitation Learning, Reinforcement Learning, 3D ํ™˜๊ฒฝ ์žฌ๊ตฌ์„ฑ ๋ฐ ๋ฌผ๋ฆฌ ๊ธฐ๋ฐ˜ Simulation ๋“ฑ ๋‹ค์–‘ํ•œ ๊ธฐ์ˆ ์„ ์‹ค์ œ Autonomous Driving ๋ฌธ์ œ์— ์ ์šฉํ•ฉ๋‹ˆ๋‹ค.

E2E Planning Model์„ ์ง์ ‘ ์„ค๊ณ„ยท๊ฐœ๋ฐœํ•˜๊ณ , Closed-loop Simulation๊ณผ ์‹ค์ฐจ์—์„œ ์„ฑ๋Šฅ์„ ๊ฒ€์ฆํ•ฉ๋‹ˆ๋‹ค. Simulation ๋ฐ ์‹ค์ฐจ ์ฃผํ–‰ ๋ฐ์ดํ„ฐ์™€ ์‹คํŒจ ์‚ฌ๋ก€๋ฅผ ๋ถ„์„ํ•˜์—ฌ ๋ชจ๋ธ์„ ๊ฐœ์„ ํ•˜๋Š” ๊ฐœ๋ฐœ ์‚ฌ์ดํด์„ ๋ฐ˜๋ณตํ•˜๋ฉฐ ์ฐจ์„ธ๋Œ€ Autonomous Driving System ๊ฐœ๋ฐœ์— ๊ธฐ์—ฌํ•ฉ๋‹ˆ๋‹ค.

The Physical AI Engineer designs and develops end-to-end (E2E) planning models for next-generation autonomous driving, as well as closed-loop simulation environments and pipelines for training and validating them.

You will work with E2E planning models for trajectory generation and decision-making, closed-loop simulation, generative AI, imitation learning, reinforcement learning, 3D environment reconstruction, and physics-based simulation to solve real-world autonomous driving problems.

You will directly design and develop E2E planning models and validate their performance in closed-loop simulation and real vehicles. By analyzing simulation results, real-world driving data, and failure cases, you will continuously improve the models and contribute to next-generation autonomous driving systems.

Responsibilities

  • Trajectory Generation ๋ฐ Decision-making์„ ์œ„ํ•œ E2E Planning Model ์„ค๊ณ„ ๋ฐ ๊ฐœ๋ฐœ

  • E2E Planning Model์˜ ํ•™์Šตยท๊ฒ€์ฆ์„ ์œ„ํ•œ Closed-loop Simulation ํ™˜๊ฒฝ, ์‹œ๋‚˜๋ฆฌ์˜ค ๋ฐ ํ‰๊ฐ€ Pipeline ์„ค๊ณ„ยท๊ฐœ๋ฐœ

  • E2E Planning Model๊ณผ Simulation ๋ฐ ์‹ค์ฐจ ์‹œ์Šคํ…œ ๊ฐ„ ์—ฐ๋™ ๊ธฐ๋Šฅ ๊ฐœ๋ฐœ๊ณผ ์‹ค์ฐจ ์‹คํ—˜ ์ˆ˜ํ–‰

  • Simulation ๊ฒฐ๊ณผ์™€ ์‹ค์ฐจ ์ฃผํ–‰ ๋ฐ์ดํ„ฐ ๋ฐ ์‹คํŒจ ์‚ฌ๋ก€ ๋ถ„์„์„ ํ†ตํ•œ E2E Planning Model ๊ฐœ์„ 

  • Design and develop E2E planning models for trajectory generation and decision-making

  • Design and develop closed-loop simulation environments, scenarios, and evaluation pipelines for training and validating E2E planning models

  • Develop integrations between E2E planning models, simulation, and real-vehicle systems, and conduct real-vehicle experiments

  • Improve E2E planning models by analyzing simulation results, real-world driving data, and failure cases

Qualifications

  • ์ปดํ“จํ„ฐ๊ณตํ•™, ์ „์ž๊ณตํ•™, ์ž๋™์ฐจ๊ณตํ•™, ๋กœ๋ด‡๊ณตํ•™ ๋˜๋Š” ๊ด€๋ จ ๋ถ„์•ผ์˜ ํ•™์‚ฌ ํ•™์œ„์™€ 2๋…„ ์ด์ƒ์˜ ์‹ค๋ฌด ๊ฒฝํ—˜ ๋˜๋Š” ์ด์— ์ค€ํ•˜๋Š” ์—ญ๋Ÿ‰

  • Python ๋˜๋Š” C++์„ ํ™œ์šฉํ•˜์—ฌ ์†Œํ”„ํŠธ์›จ์–ด๋ฅผ ๊ตฌํ˜„ํ•˜๊ณ  ๋””๋ฒ„๊น…ํ•œ ๊ฒฝํ—˜

  • ๋‹ค์Œ ๋ถ„์•ผ ์ค‘ ํ•˜๋‚˜ ์ด์ƒ์— ๋Œ€ํ•œ ํ•™์—…, ํ”„๋กœ์ ํŠธ ๋˜๋Š” ์‹ค๋ฌด ๊ฒฝํ—˜

    • Machine Learning ๋˜๋Š” Deep Learning ๋ชจ๋ธ ๊ฐœ๋ฐœ ๋ฐ ํ•™์Šต

    • Motion Planning, Decision-making ๋˜๋Š” Robotics ์•Œ๊ณ ๋ฆฌ์ฆ˜

    • Computer Vision ๋˜๋Š” 3D ํ™˜๊ฒฝ ์žฌ๊ตฌ์„ฑ ๋ฐ ํ‘œํ˜„

    • ์ฐจ๋Ÿ‰ยท๋กœ๋ด‡์˜ ๋™์—ญํ•™ ๋ชจ๋ธ๋ง ๋˜๋Š” Simulation

  • Bachelorโ€™s degree in Computer Science, Electrical Engineering, Automotive Engineering, Robotics, or a related field with 2+ years of professional experience, or equivalent practical expertise

  • Experience implementing and debugging software using Python or C++

  • Academic, project, or professional experience inat least one of the following areas:

    • Machine learning or deep learning model development and training

    • Motion planning, decision-making, or robotics algorithms

    • Computer vision or 3D environment reconstruction and representation

    • Vehicle or robot dynamics modeling or simulation

Preferred Qualifications

  • Autonomous Driving ๋˜๋Š” Robotics ๋ถ„์•ผ์—์„œ E2E Planning, Trajectory Generation, Decision-making ๋˜๋Š” Simulation ๊ด€๋ จ ํ”„๋กœ์ ํŠธ๋ฅผ ์ˆ˜ํ–‰ํ•œ ๊ฒฝํ—˜

  • ์‹ค์ œ ์ฐจ๋Ÿ‰ ๋˜๋Š” Robot ๋“ฑ Hardware ํ™˜๊ฒฝ์—์„œ AI Model ๋ฐ ์•Œ๊ณ ๋ฆฌ์ฆ˜์„ ์‹คํ—˜ํ•˜๊ณ  ๊ฒ€์ฆํ•œ ๊ฒฝํ—˜

  • Project experience in E2E planning, trajectory generation, decision-making, or simulation for autonomous driving or robotics

  • Experience testing and validating AI models or algorithms on real vehicles, robots, or other hardware platforms

Interview Process

  1. ์„œ๋ฅ˜ ์ „ํ˜•

  2. ์ฝ”๋”ฉ ํ…Œ์ŠคํŠธ

  3. 1์ฐจ ๋ฉด์ ‘ (ํ™”์ƒ, 1์‹œ๊ฐ„ ๋‚ด์™ธ)

  4. 2์ฐจ ๋ฉด์ ‘ (๋Œ€๋ฉด ํ˜น์€ ํ™”์ƒ, 3์‹œ๊ฐ„ ๋‚ด์™ธ)

  5. ์ฒ˜์šฐ ํ˜‘์˜ยท์ž…์‚ฌ

  1. Application Screening

  2. Coding Test

  3. First Interview (Virtual, approximately 1 hour)

  4. Second Interview (In-person or Virtual, approximately 3 hours)

  5. Offer Discussion / Onboarding

Additional Information

  • ์ „ํ˜• ์ ˆ์ฐจ๋Š” ์ผ์ • ๋ฐ ์ง„ํ–‰ ์ƒํ™ฉ์— ๋”ฐ๋ผ ์ผ๋ถ€ ๋ณ€๊ฒฝ๋  ์ˆ˜ ์žˆ์œผ๋ฉฐ, ๊ฐ ์ „ํ˜• ๊ฒฐ๊ณผ๋Š” ๋“ฑ๋กํ•˜์‹  ์ด๋ฉ”์ผ๋กœ ๊ฐœ๋ณ„ ์•ˆ๋‚ด๋“œ๋ฆฝ๋‹ˆ๋‹ค.

  • ์ง€์›์„œ ์ œ์ถœ ์‹œ ์ฃผ๋ฏผ๋“ฑ๋ก๋ฒˆํ˜ธ, ๊ฐ€์กฑ๊ด€๊ณ„, ํ˜ผ์ธ ์—ฌ๋ถ€, ์—ฐ๋ด‰, ์‚ฌ์ง„, ์‹ ์ฒด์กฐ๊ฑด, ์ถœ์‹  ์ง€์—ญ ๋“ฑ ์ฑ„์šฉ์ ˆ์ฐจ๋ฒ•์ƒ ์š”๊ตฌ ๊ธˆ์ง€๋œ ์ •๋ณด๋Š” ์ œ์™ธ ๋ถ€ํƒ๋“œ๋ฆฝ๋‹ˆ๋‹ค.

  • ์ง€์›์„œ ์ ‘์ˆ˜ ์ค‘ ์˜ค๋ฅ˜๊ฐ€ ๋ฐœ์ƒํ•˜๊ฑฐ๋‚˜ ๊ธฐํƒ€ ๋ฌธ์˜ ์‚ฌํ•ญ์ด ์žˆ์„ ๊ฒฝ์šฐ, recruit@42dot.ai๋กœ ๋ฌธ์˜ํ•ด ์ฃผ์‹œ๊ธฐ ๋ฐ”๋ž๋‹ˆ๋‹ค.

  • ๊ตญ๊ฐ€๋ณดํ›ˆ๋Œ€์ƒ์ž ๋ฐ ์ทจ์—…๋ณดํ˜ธ ๋Œ€์ƒ์ž๋Š” ๊ด€๊ณ„๋ฒ•๋ น์— ๋”ฐ๋ผ ์šฐ๋Œ€ํ•ฉ๋‹ˆ๋‹ค.

  • ์žฅ์• ์ธ ๊ณ ์šฉ ์ด‰์ง„ ๋ฐ ์ง์—…์žฌํ™œ๋ฒ•์— ๋”ฐ๋ผ ์žฅ์• ์ธ ๋“ฑ๋ก์ฆ ์†Œ์ง€์ž๋ฅผ ์šฐ๋Œ€ํ•ฉ๋‹ˆ๋‹ค.

  • 42dot์€ ์˜๋ขฐํ•˜์ง€ ์•Š์€ ์„œ์น˜ํŽŒ์˜ ์ด๋ ฅ์„œ๋ฅผ ๋ฐ›์ง€ ์•Š์œผ๋ฉฐ, ์š”์ฒญํ•˜์ง€ ์•Š์€ ์ด๋ ฅ์„œ์— ๋Œ€ํ•ด ์ˆ˜์ˆ˜๋ฃŒ๋ฅผ ์ง€๋ถˆํ•˜์ง€ ์•Š์Šต๋‹ˆ๋‹ค.

  • ์ง€์›์„œ ๋‚ด์šฉ ์ค‘ ํ—ˆ์œ„ ์‚ฌ์‹ค์ด ๋ฐœ๊ฒฌ๋  ๊ฒฝ์šฐ, ์ž…์‚ฌ๊ฐ€ ์ทจ์†Œ๋  ์ˆ˜ ์žˆ์Šต๋‹ˆ๋‹ค.

  • ์ธํ„ฐ๋ทฐ ํ”„๋กœ์„ธ์Šค ์ข…๋ฃŒ ํ›„ ์ง€์›์ž์˜ ๋™์˜ํ•˜์— ํ‰ํŒ์กฐํšŒ๊ฐ€ ์ง„ํ–‰๋  ์ˆ˜ ์žˆ์Šต๋‹ˆ๋‹ค.

  • 3๊ฐœ์›”์˜ ์ˆ˜์Šต๊ธฐ๊ฐ„์ด ์ ์šฉ๋  ์ˆ˜ ์žˆ์Šต๋‹ˆ๋‹ค.

  • The recruitment process may change depending on schedule and progress; the result of each stage will be sent individually to your registered email.

    Please do not include legally prohibited information in your application (e.g., ID number, family relations, marital status, salary, photo, physical details, hometown).

  • For application errors or inquiries, contact recruit@42dot.ai.

  • Veterans and applicants eligible for employment protection will receive preferential consideration in accordance with applicable laws and regulations.

  • In compliance with the Act on Employment Promotion and Vocational Rehabilitation for Persons with Disabilities, registered individuals with disabilities will receive preferential consideration.

  • 42dot does not accept unsolicited resumes from search firms. We will not pay any fees for resumes submitted without prior agreement.

  • False information in your application may result in offer cancellation.

    A reference check may be conducted after the interview process, with your consent.

  • A 3-month probationary period may apply.

Physical AI Engineer ยท 42dot

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