Publisher
source

Thomas Schön

2 months ago

Postdoctoral Position in Machine Learning for 3D Genome Dynamics at Uppsala University Uppsala University in Sweden

Degree Level

Postdoc

Field of study

Computer Science

Funding

The postdoctoral position is funded by the Wallenberg AI, Autonomous Systems and Software Program (WASP) and the Wallenberg National Program for Data-Driven Life Science (DDLS). The project is fully funded for up to 5 years. Specific stipend or salary details are not provided in the announcement.

Deadline

Expired

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Country

Sweden

University

Uppsala University

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Keywords

Computer Science
Machine Learning
Biology
Artificial Intelligence
Single-cell Analysis
Chromosome Structure
Bioinformatics
Spatiotemporal Modelling
Data-driven Life Science Fellows
3d Genome Organization

About this position

Uppsala University is seeking a postdoctoral researcher in Machine Learning with a strong interest in the organization of life, specifically focusing on the 3D structure and dynamics of chromosomes. The position is part of the NEST project, 'Learning 3D Genome Dynamics from Heterogeneous Data,' funded by the Wallenberg AI, Autonomous Systems and Software Program (WASP) and the Wallenberg National Program for Data-Driven Life Science (DDLS). The project aims to develop and apply advanced machine learning models to understand how DNA is organized within cells and how this organization changes over time, with a particular focus on the model organism Escherichia coli.

The research will involve generating and analyzing large-scale single-cell datasets to map 3D genome structures and their dynamics, integrating data from multiple experimental approaches. The successful candidate will work closely with leading research groups, including those led by Thomas Schön (Uppsala University), Johan Elf (Uppsala University), and Magda Bienko (Karolinska Institutet), combining expertise in artificial intelligence, bioinformatics, and molecular biology.

Key research areas include machine learning, spatiotemporal modeling, bioinformatics, chromosome structure, and data-driven life science. The project offers a unique opportunity to contribute to fundamental discoveries in genome organization and to develop computational tools with broad applications in biology and synthetic genomics.

Applicants should have a PhD in computer science, machine learning, computational biology, bioinformatics, or a related field, with experience in machine learning and biological data analysis. The position is fully funded for up to 5 years, with support from major Swedish research programs. The application deadline is January 23, 2026. For more information and to apply, visit the official advertisement link.

Funding details

The postdoctoral position is funded by the Wallenberg AI, Autonomous Systems and Software Program (WASP) and the Wallenberg National Program for Data-Driven Life Science (DDLS). The project is fully funded for up to 5 years. Specific stipend or salary details are not provided in the announcement.

What's required

Applicants should have a PhD in computer science, machine learning, computational biology, bioinformatics, or a related field. Experience with machine learning models, spatiotemporal modeling, and interest in biological data analysis are required. Strong programming skills and a demonstrated ability to work in interdisciplinary teams are preferred. Excellent communication skills in English are expected.

How to apply

Visit the official advertisement link provided to review the full position details and submit your application. Prepare your CV, cover letter, and relevant documents. Apply before January 23, 2026. Contact the supervisors for further information if needed.

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