Senior Control Systems Engineer – Vehicle Dynamics & Abstraction (m/f/d)

Meyandy LLC

Germany (OH)

On-site

USD 103,603 - 149,649

Full time

14 days+

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Benefits offered by this job

Direct impact on products
Flat hierarchies and learning culture

Job summary

Quantum-Systems GmbH in Munich seeks a Senior Control Systems Engineer to lead the design and deployment of robust control layers for autonomous vehicles. You will ensure safe execution of high-level commands at the physical limits and build architectures robust to non-linear real-world conditions.

You will work on multivariable control, system identification, and data-driven allocation; translate complex control logic into real-time code in MATLAB/Simulink, C++, or Python, within a fast-paced

Qualifications

  • Experience in real-time closed-loop control systems.
  • Foundational control theory: loop-shaping, Bode/Nyquist, LQR methods.
  • System identification and data-driven control allocation techniques.
  • Strong background in nonlinear control theory (differential geometry, feedback linearization, differential flatness).
  • State estimation with Kalman filtering under constraints.
  • Ability to translate control logic to real-time code (MATLAB/Simulink, C++, Python).

Responsibilities

  • Control Architecture Abstraction: maintain a platform-agnostic motion command interface.
  • Multivariable Control & Allocation: design laws for path tracking, velocity, and actuator distribution.
  • System Identification & Modeling: model unknown plant dynamics and responses.
  • Pragmatic Simulation & Verification: validate loops with lean simulations to iterate quickly.
  • Motion Safeguarding: ensure commands are bounded and safe in real time.

Skills

Real-time control
Classical control theory
State estimation
Nonlinear control theory
Kalman filtering
Python / C++ programming

Tools

MATLAB/Simulink
Python
C++

Job description

We are seeking a Senior Control Systems Engineer to lead the design and execution of robust control layers across a highly diverse fleet of autonomous vehicles. In this role, you will act as the critical boundary layer to the upper autonomy stack. As the industry transitions toward End-to-End driving models, your primary mandate is to ensure that high-level motion commands are executed sensibly and strictly safeguarded at the physical limits of the vehicle. Your designs will address complex, real-world scenarios rather than idealized environments. You will build control architectures that remain robust under severe, highly non-linear real-world conditions. This includes handling sudden tire slip, navigating challenging terrain such as mud, gravel, potholes, and dense vegetation, maintaining stability on steep inclines and side slopes, and delivering predictable tracking despite asymmetric system degradation, such as a damaged mechanics.

What is your Day to Day Mission:
  • Control Architecture Abstraction: Maintain a standardized, platform-agnostic motion command interface that cleanly abstracts underlying mechanical complexity from the planning layers.
  • Multivariable Control & Allocation: Design and deploy control laws to manage path tracking, velocity execution, and actuator saturation, incorporating data-driven control allocation to dynamically distribute effort across multiple actuators.
  • System Identification & Modeling: Utilize data-driven system identification techniques to model unknown plant dynamics, latencies, and actuator responses.
  • Pragmatic Simulation & Verification: Validate control loops rapidly. If filter design and linear/nonlinear analysis indicate a controller will behave, you are empowered to rely on lean, pragmatic subsystem simulations to iterate fast rather than being bottlenecked waiting for massive, full-system high-fidelity simulation runs.
  • Motion Safeguarding: Ensure that incoming motion commands are dynamically evaluated, bounded, and safeguarded against the physical realities and constraints of the vehicle chassis in real time.
What you bring to the team:
  • Experience: Proven professional experience developing and deploying real-time closed-loop control systems.
  • Linear & Classical Control Design: Deep foundational command of classical control theory, including frequency-domain loop-shaping, stability margin analysis (Bode/Nyquist), and standard state-space design methods (LQR/pole-placement).
  • System Identification & Allocation: Demonstrated experience utilizing system identification methods or empirical frequency response estimation to characterize raw plant dynamics, alongside data-driven control allocation techniques.
  • Nonlinear Control Theory: Strong theoretical and practical foundation in Differential Geometry as applied to nonlinear systems, specifically utilizing Feedback Linearization and Differential Flatness for exact state transformation.
  • State Estimation: Proficiency in Kalman Filtering for state estimation under non-holonomic constraints.
  • Implementation & Tooling: High proficiency in either the MATLAB/Simulink, C++, or Python. The core requirement is your ability to translate complex control logic into clean, deterministic execution ready for real-time environments.
Your Benefits:
  • Direct impact: See your contributions rapidly integrated from cutting-edge research into industrialized products, flying in the field within short development cycles.
  • Culture & Environment: A dynamic, fast-paced, and collaborative startup environment with flat hierarchies, efficient collaboration, and a strong emphasis on continuous learning opportunities.
Senior Control Systems Engineer – Vehicle Dynamics & Abstraction (m/f/d) — Quantum-Systems GmbH, München.
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