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Research Assistants (Postdocs) (m/f/d) - AI

Universität Rostock

Rostock

Vor Ort

EUR 45.000 - 55.000

Vollzeit

Heute
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Zusammenfassung

A leading research university in Rostock is seeking Research Assistants (Postdocs) in AI for a project focused on machine learning and bioprocess engineering. Candidates should have a completed bachelor’s, master’s, and doctoral degree in Computer Science, along with experience in AI and data analysis. This position emphasizes interdisciplinary collaboration and open scientific research, providing a unique opportunity for career development. The role is full-time, temporary until 31.12.2028, with responsibilities including model design and collaboration with industry partners.

Qualifikationen

  • Experience in artificial intelligence, statistical modeling, and data analysis.
  • Ability to solve complex tasks independently.
  • Proficiency in written and spoken English at level C1 CEFR or native German.

Aufgaben

  • Design and implement deep neural and hybrid symbolic-learning models.
  • Collaborate with industrial partners to refine models in bioprocess settings.
  • Contribute to high-impact scientific research and publications.

Kenntnisse

Artificial Intelligence
Statistical Modeling
Data Analysis
Communication
Time Management
Interdisciplinary Collaboration

Ausbildung

Completed bachelor's and master’s degree in Computer Science
Completed doctoral degree in Computer Science
Jobbeschreibung
Overview

The University of Rostock offers a diverse, varied and challenging position in a tradition-conscious, yet innovative, modern and family-friendly university in a lively city by the sea.

At the Faculty of Computer Science and Electrical Engineering, Institute for Visual and Analytic Computing, subject to allocation of funds, we are filling two positions at the earliest possible date on a temporary basis for the duration of the project NEXCELL ending on 31.12.2028.

Position
  • Title: Research Assistants (Postdocs) (m/f/d) – AI
  • Start date: at the earliest possible date
  • Working hours: full-time with 40 hours
  • Remuneration: pay group 13 TV-L
  • Location: Rostock
  • Tender number: P 14/2026
  • Limitation: limited until 31.12.2028
  • Application time: 2026-02-22
Contacts

HR department: Pia-Lucy Dahl
Phone number: 0381/498-1291
E-mail: pia.dahl@uni-rostock.de

Department: Prof. Thomas Kirste
Phone number: 0381/498-7510
E-mail: thomas.kirste@uni-rostock.de

Project context and opportunities

The project addresses fundamental and applied challenges at the intersection of machine learning, probabilistic modeling, symbolic AI, and bioprocess engineering, with strong relevance to both academic research and industrial innovation. The positions offer a clearly defined pathway toward postdoctoral qualification, as well as structured opportunities for career development in academia and industry.

NEXCELL is a major multi-million-euro collaborative research initiative that brings together leading industrial and academic partners to create a groundbreaking point-of-care platform for next-generation cell and gene therapies. The vision is to enable personalized cancer treatments to be manufactured directly at the clinical site – making life-saving therapies more accessible and scalable. Within this project, the University of Rostock serves as the AI technology provider, developing a probabilistic digital twin of the NEXCELL bioreactor system. This digital twin will combine Bayesian AI, deep learning, symbolic reasoning, and hybrid modeling techniques to intelligently monitor and predict both technical and biological processes.

By addressing challenges such as uncertainty quantification, multimodal sensor fusion, anomaly detection, and robust state estimation, our research will push the frontiers of AI in complex, safety-critical, and data-sparse domains. For motivated AI researchers, NEXCELL offers a unique opportunity to conduct fundamental research at the interface of cutting-edge machine learning and real-world bioprocess applications, with the potential for high-impact publications, open-source contributions, and direct collaboration with a market leader in bioreactor technology.

Responsibilities
  • design, implement, and evaluate deep neural, probabilistic, and hybrid symbolic-learning models for real-time sensor fusion, anomaly detection, and latent state estimation in dynamic bioreactor environments
  • adapt and extend large language models (LLMs) and symbolic reasoning frameworks to interpret domain-specific process logs, develop predictive diagnostics, and support explainable and trustworthy decision-making pipelines for bioprocess engineers
  • develop multi-modal bioinformatics pipelines for temporal single-cell analysis based on longitudinal pattern mining, geometric and graph deep learning
  • collaborate closely with industrial partners and domain experts to curate multimodal process data, design and execute validation experiments, perform simulation studies, and iteratively refine models for deployment in real-world bioprocess settings
  • investigate reinforcement learning, simulator-based inference, and adaptive control strategies for feedback control and trajectory tracking in bioprocesses characterized by high uncertainty and complex nonlinear dynamics
  • contribute to high-impact, open scientific research, including the development of open-source software tools, co-authorship of peer-reviewed conference and journal publications, presentation of results at international venues, and supervision or mentoring of junior students, thereby establishing a strong and visible scientific profile
Qualifications – what makes you a good fit
  • Academic qualifications:
    • completed bachelor's and master’s degree in Computer Science, or a diploma in Computer Science or a comparable course of study with a predominantly computer science curriculum
    • the qualifying degree must have been completed with a grade 1.7 or better (German grading system)
    • degree must have been awarded by a higher education institution (recognized as H+ according to the German Anabin system)
    • completed doctoral degree in Computer Science awarded with a final grade of magna cum laude or higher
  • Language proficiency: must meet either of the following profiles:
    • proficiency in written and spoken English at level C1 CEFR (e.g. IELTS overall score ≥ 7.0, or TOEFL ≥ 94); or
    • native-level proficiency in German and demonstrated English language skill
  • Research experience:
    • documented experience in artificial intelligence, statistical/probabilistic modeling and/or data analysis
    • demonstrated analytical skillset, ability to solve novel and complex tasks independently and present results coherently
  • Organizational and time-management skills: demonstrated ability to work independently and reliably under time constraints and to meet deadlines
  • Communication skills: proven ability to communicate scientific results effectively, both orally and in written form
  • Interdisciplinary competence: demonstrated ability to work collaboratively in interdisciplinary research environments
WE AS AN EMPLOYER

Equal opportunities are important to us. We welcome applications from suitable severely disabled people or people from traditionally underrepresented groups. We aim to increase the proportion of women in research and teaching and therefore encourage suitably qualified women to apply. We welcome applications from people of other nationalities or with a migration background.

WE OFFER YOU
FURTHER INFORMATION

We will determine the experience level individually, taking into account your previous professional experience.

If you would like to work part-time in this position, this is possible subject to the requirements of the position.

The temporal limitation of the employment relationship is based on § 2 (2) Wissenschaftszeitvertragsgesetz.

We look forward to receiving your application (cover letter, CV, degree certificate stating your final grade) by 22.02.2026 at the latest. We can only consider applications received via our homepage. Please send us your documents via the ‘Online application’ button at the end of a job offer. Unfortunately, we cannot accept e-mail applications.

Incomplete application documents may not be considered in the further course of the selection process.

Unfortunately, we can not cover application and travel costs.

Become part of the team

The Hybrid Methods in Artificial Intelligence and Machine Learning group is part of the Institute for Visual & Analytic Computing at the Faculty of Computer Science and Electrical Engineering at the University of Rostock. Its research focuses on the integration of symbolic, probabilistic, and neural approaches in AI & ML. The application domains include AI-supported digital twins, intelligent environments, situation-aware assistance, and multimodal diagnostics. The methodological focus is on sequential state estimation using hybrid Bayesian and neuro-symbolic models, as well as the integration of deep learning with symbolic background knowledge. The positions are co-supervised by Hessian.AI group leader Martin Becker focusing on knowledge-centric AI and biomedical ML with a strong international network.

We look forward to receiving your application!

Contact

Universität Rostock
18051 Rostock
Tel.: +49 381 498 - 0

Standort: Universitätsplatz 1, 18055 Rostock

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