Postdoctoral Researcher - Machine Learning for Plant Regulatory Genomics
- Ente
- Forschungszentrum Jülich
- Paese
- Germania
- Campo di ricerca
- All
- Lingua dell’annuncio
- Inglese
- Tipo di contratto
- To be defined
- Profilo ricercato
- Ricercatore post-dottorato
- Sede
- Jülich, Germania
- Pubblicato il
- —
- Scadenza
- 9 agosto 2026
Descrizione
Postdoctoral Researcher - Machine Learning for Plant Regulatory Genomics Sintesi in italiano (traduzione automatica): L'ente Forschungszentrum Jülich cerca un Ricercatore post-dottorato specializzato in Machine Learning per la Genomica Regolatoria delle Piante. La posizione è parte del gruppo di Analisi e Integrazione dei Dati Omici, guidato dal Dr. Jędrzej Szymański. Il candidato selezionato guiderà il nucleo di machine learning di un progetto di ricerca interdisciplinare, sviluppando modelli predittivi che collegano la variazione genetica alla regolazione genica e ai tratti delle piante. È richiesta una laurea magistrale e/o un dottorato in Informatica, Bioinformatica, Biologia Computazionale, Data Science o un campo correlato, oltre a una solida esperienza in machine learning e deep learning. È preferibile la conoscenza di Python e dei framework ML, nonché familiarità con la biologia genomica e regolatoria. Area of research: Scientific / postdoctoral posts Job description: Postdoctoral Researcher - Machine Learning for Plant Regulatory Genomics Plants adapt to their environment through genetic variation, but linking that variation to its ecological role across species remains one of the central challenges in plant biology. If you are passionate about applying deep learning to decode the regulatory grammar of plant genomes and translating predictions into testable biological hypotheses, we invite you to join the Omics Data Analysis and Integration group led by Dr. Jędrzej Szymański. Our group specializes in machine learning, multi-omics data integration, and the development of predictive models for plant gene regulation. We are part of the Institute of Bio- and Geosciences (IBG-4: Bioinformatics, headed by Prof. Dr. Björn Usadel) at Forschungszentrum Jülich. The position is embedded in subproject A12 of the DFG-funded Collaborative Research Centre TRR 341 “Plant Ecological Genetics” , a large interdisciplinary consortium spanning the University of Cologne, Forschungszentrum Jülich, and partner institutions. Your Job You will lead the machine-learning core of an interdisciplinary research project at the interface of genomics, deep learning, and plant biology. Your work will focus on developing and applying predictive models that link genetic variation to gene regulation and traits, working with large multi-omics datasets generated across the consortium. In particular, you will: Assemble, harmonize, and curate large-scale genomic, transcriptomic, and phenotypic datasets into AI-ready resources, in collaboration with our data-management partners Develop, re-train, and fine-tune deep-learning models for predicting gene expression and transcription-factor binding from regulatory sequences Apply these models to interpret genetic variation, integrate predictions with complementary genetic analyses, and deliver prioritized candidate genes to experimental partners Extend the modeling framework across multiple plant species using transfer learning Present results at consortium meetings and international conferences, publish in peer-reviewed journals, and contribute to science communication and our open-source tools Your Profile Master and/or PhD in Computer Science, Bioinformatics, Computational Biology, Data Science, or a closely related field Strong experience in machine learning and/or deep learning, ideally with sequence models (e.g. CNNs, transformers) applied to genomic data Proficiency in Python and common ML frameworks (e.g. PyTorch, TensorFlow); experience working on HPC clusters is an advantage Familiarity with genomics and regulatory biology (gene expression, transcription-factor binding, variant effects, GWAS/eQTL) is desirable; a willingness to expand into population and ecological genomics is essential Structured, analytical thinking and a systematic, careful working method Enthusiasm for interdisciplinary collaboration with experimental biologists and population geneticists across the consortium Excellent English skills (written and spoken); working knowledge of German is a plus Our Benefits for You We work on highly topical, socially relevant issues and offer you the opportunity to actively shape change! You can expect a wide range of opportunities: Meaningful tasks: A varied and central role in an international, interdisciplinary environment Work-life balance: Optimal conditions for balancing work and private life, as well as a family-friendly company policy. The option of flexible working (in terms of location) is generally available after consultation and in line with upcoming tasks and (on-site) appointments Vacation: You will receive 30 days of vacation plus additional days off (e.g. between Christmas and New Year's) Flexibility: Flexible working time models, including options close to full-time , allow you to tailor your working hours to suit your individual needs Knowledge & further training: Targeted, individual supp Annuncio in inglese. Fonte: Euraxess (Commissione europea).
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Fonte: Euraxess (Commissione europea) · Servizio indipendente
Vai al bando ufficialeLe informazioni sono aggregate automaticamente da Euraxess (Commissione europea) e possono essere incomplete. Verifica sempre i requisiti e le modalità di candidatura sul bando ufficiale.