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Master Thesis AI-based Sensorless Edrive Control

Bosch·RenningenHybridFull-time
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Vox-Zusammenfassung
  • Rolle: Entwicklung und Validierung von KI-basierten Steuerungsarchitekturen für sensorlose elektrische Antriebe.
  • Anforderungen: Master-Studium in Cybernetics, Engineering, Mathematik, Informatik oder vergleichbar; Kenntnisse in Steuerungstechnik und Machine Learning; Erfahrung mit Python oder MATLAB.
  • Bedingungen/Benefits: Enrolment an der Universität erforderlich; hybride Arbeitsweise; 6-monatige Dauer; gute Englischkenntnisse; Dokumentation und Präsentation der Ergebnisse.
  • Aufgaben: Analyse von Machine-Learning-Ansätzen, Entwicklung neuartiger KI-Steuerungsarchitekturen, Simulation, Test und Validierung der Algorithmen.
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Stellenbeschreibung

Electric drives are at the heart of modern mechatronics, and the industry is rapidly moving toward sensorless control to estimate rotor positions using software rather than physical sensors. This thesis explores how Artificial Intelligence and Neural Networks can revolutionize traditional control architectures. The goal is to investigate and design advanced neural network concepts that learn control and estimation tasks. By mapping system measurements to control states, this research aims to pave the way for the next generation of intelligent, software-defined electric drive control. • During your thesis you will gain a solid understanding of the physical models of electric drives (e.g., electric machines, inverters) and the simulation environment. • You will analyze state-of-the-art machine learning and neural network approaches applied to sensorless control of electric drives. • Furthermore, you will develop novel AI-based control architectures, exploring both modular and end-to-end neural network designs. • You will implement, test, and validate your control algorithms using high-fidelity electric drive simulation models. • Finally, you will document your methodology, analyze the results, and present your findings to the development team. • Education: Master studies in the field of Cybernetics, Engineering, Mathematics, Computer Science or comparable with good grades • Experience and Knowledge: profound knowledge of control engineering and machine learning; experience in Python or MATLAB • Personality and Working Practice: you excel at analyzing complex problems, structuring your tasks systematically, while driving results with a highly autonomous working style • Work Routine: we offer you the opportunity to work in a hybrid setup • Languages: very good in English 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? Felix Berkel (Functional Department) Work #LikeABosch starts here: Apply now! #LI-DNI

Transparenz-Panel

Originalquelle
smartrecruiters
Veröffentlicht
08. Juli 2026 · echtes Datum
Zuletzt verifiziert
gestern
Qualitäts-Score
70/100
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Unternehmen identifiziert25
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postedAt15
Vollständige Beschreibung20

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