Senior Hardware Design Engineer – Braking Systems
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Design and implement advanced closed-loop control algorithms for non-linear power electronics converters during a six-month master thesis. You'll evaluate Model Predictive Control, neural network-based, and reinforcement learning approaches using simulation tools like MATLAB/Simulink or Python, comparing performance against baseline controllers. Required: master's studies in electrical engineering, control theory, or related fields with strong control systems background, proficiency in simulation tools and machine learning frameworks, and power electronics knowledge. Hybrid work setup.
Written from this posting by Neural Jobs AI. The full description is below.
Modern power electronic systems, specifically AC/DC and DC/DC converters, are the vital backbone of tomorrow's technological landscape:
To meet the strict efficiency and volume requirements of these applications, modern power electronics increasingly employ advanced soft-switching topologies. While these topologies significantly reduce switching losses and maximize power density, they exhibit highly non-linear dynamics. Concurrently, cost and space optimization demand smaller energy storage components (capacitors and inductors), which further intensifies system instability and complex dynamic behavior. Traditional linear control methods (like standard PI controllers) struggle to maintain optimal performance under these challenging conditions.
This Master Thesis aims to explore, compare, and implement next-generation closed-loop control algorithms to handle these non-linearities and push the boundaries of converter performance.
Start: according to prior agreement
Duration: 6 months
Requirement for this thesis is the enrollment at university. Please attach your CV, transcript of records, examination regulations and if indicated a valid work and residence permit.
Diversity and inclusion are not just trends for us but are firmly anchored in our corporate culture. Therefore, we welcome all applications, regardless of gender, age, disability, religion, ethnic origin or sexual identity.
Need further information about the job?
Michael Jiptner (Functional Department)
+49 711 811 45208
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Bosch is a diversified engineering and technology group active in mobility, industrial technology, consumer goods, and energy and building technology. Its businesses produce automotive systems, power tools, home appliances, factory technology, sensors, software, and connected solutions. The company combines large-scale manufacturing with research in electronics, software, AI, automation, and the Internet of Things. Bosch supplies consumers as well as automotive, industrial, commercial, and infrastructure customers through operations around the world.
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