Postdoctoral researcher on machine learning of gene isoform variants in immune cells
Gene splicing can generate multiple transcripts (isoforms) from a single gene, potentially influencing disease mechanisms. However, for many genes, the full repertoire of isoforms is still unknown and therefore knowledge on the impact of isoforms for rare diseases in clinical settings is limited. With the development of long-read sequencing technologies, reliable identification and quantification of these transcripts is now possible. We are seeking a motivated postdoctoral researcher to investigate and predict the relationship between gene isoforms and (rare) disease.
Job description
You will study the impact of (rare) genetic variants on isoform expression using long-read single-cell expression data from immune cells (blood and gut). Your main tasks will include:
The methods you develop will help increase the diagnostic yield for rare disease patients. Applications will include analysis of large-scale whole genome sequencing datasets from UMCG patients and international consortia (e.g., SolveRD, Genomics-England, GREGoR). You will disseminate findings through high-impact publications and presentations at international conferences. This position is part of the single-cell eQTLGen consortium, led by the Functional Genomics group at UMCG’s Department of Genetics. You will have access to unique datasets and benefit from collaboration within an international network.
You will be based in the Department of Genetics at the University Medical Center Groningen (UMCG) and the Faculty of Medical Sciences at the University of Groningen. The University of Groningen is a globally oriented research university ranked among the world’s top 100. The Faculty of Medical Sciences is the second oldest medical faculty in the Netherlands.
Our Functional Genomics group, supervised by Prof. Dr. Lude Franke, is part of the Genetics department and includes ~15 researchers focused on understanding disease through genetic and genomic data. The broader department consists of approximately 400 staff involved in research, diagnostics, and patient care. We value open science and active participation in major international consortia such as eQTLGen and sc-eQTLGen.
You have:
Intended starting date: April 1st 2026 or upon agreement.
For questions about the position
Do you have questions about this position or are you unsure if your profile matches? Please contact Dr. Marc Jan Bonder ([email protected]). We look forward to your application!
Link
Research.rug Marc Jan Bonder
Any questions? Do contact us.
Please use the the digital application form at the bottom of this page - only these will be processed. You can apply until 23 February 2026. Within half an hour after sending the digital application form you will receive an email- confirmation with further information.
Check if an open application is possible for you.
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