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Principal AI Engineer - Robotics Control

Singapore Technologies Engineering Ltd

Singapore

On-site

USD 80,000 - 110,000

Full time

15 days ago

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Job summary

An innovative firm is seeking a Robotics Control Engineer to develop sophisticated control algorithms for autonomous robotic systems. This role involves designing advanced motion planning strategies and optimizing real-time control architectures, directly impacting how robotic systems navigate dynamic environments. Collaborating with industry experts, you'll leverage your expertise in control theory and programming languages like C++ and Python. If you're passionate about robotics and eager to contribute to groundbreaking projects in this field, this opportunity is perfect for you.

Qualifications

  • 3+ years of experience in robotics control system development.
  • Strong background in control theory and optimization for autonomous systems.

Responsibilities

  • Design and implement advanced control algorithms for autonomous robotic platforms.
  • Optimize motion planning and path control strategies for multi-robot coordination.

Skills

C++
Python
ROS
Control Theory
State Estimation
Optimization
Adaptive Control
Reinforcement Learning

Education

Master’s or PhD in Robotics
PhD in Control Systems

Tools

MATLAB/Simulink
PX4
AirSim

Job description

Job Overview

We seek a skilled Robotics Control Engineer experienced in developing sophisticated control and decision-making algorithms for autonomous robotic systems. In this role, you will leverage your control theory and real-time optimization expertise to engineer high-performance motion planning and coordination strategies that enable robots to perform intricate tasks in dynamic environments. You will collaborate with distinguished professors and industry experts, with your work directly influencing how our systems navigate and respond to real-world challenges.

Key Responsibilities:

  • Design and implement advanced control algorithms (e.g., PID, adaptive control, model predictive control) tailored for autonomous robotic platforms.
  • Optimize motion planning and path control strategies to enhance multi-robot coordination and operational efficiency.
  • Develop real-time control architectures that leverage edge computing for low-latency decision-making.
  • Integrate adaptive learning techniques to continuously refine control performance, particularly for dynamic systems.
  • Develop and test control algorithms in both simulation and real-world experiments, utilizing aerial simulation tools (e.g., PX4 SITL, AirSim) when applicable.
  • Collaborate with interdisciplinary teams to integrate control systems with AI, sensor fusion, and hardware subsystems.

Required Qualifications

  • Master’s or PhD in Robotics, Control Systems, or a related field.
  • 3+ years of experience in robotics control system development or equivalent R&D experience (PhD candidates with strong research contributions are encouraged to apply).
  • Strong background in control theory, state estimation, and optimization for autonomous systems.
  • Proficiency in C++, Python, and ROS; hands-on experience with real-time control systems is essential.
  • Expertise in traditional model-based control methods is required; familiarity with learning-based control approaches (e.g., reinforcement learning, adaptive control) is a plus.
  • Experience in aerial robotics control—including familiarity with flight dynamics and autopilot systems (e.g., PX4)—is highly desirable.

Preferred Qualifications

  • Postdoctoral experience in robotics or control systems.
  • Experience with real-world deployment and flight testing of autonomous systems.
  • A strong research record in control theory, AI-driven robotics, or multi-agent coordination with an emphasis on aerial applications.
  • Proficiency with MATLAB/Simulink for control system design and testing.
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