Join us at the Department of Electrical and Computer Engineering at Aarhus University for a two-year postdoctoral position focused on physics-driven machine learning for ground-based, airborne, and drone-based transient electromagnetic (TEM) data. The project will build on anEMone, our fully differentiable TEM forward-modelling framework implemented in PyTorch, to develop supervised and self-supervised deep learning models that directly incorporate electromagnetic physics. We are looking for a motivated postdoc to lead cutting-edge research that combines methodological development with practical deployment within a large Innovation Fund Denmark Grand Solutions project.
This is a 2-year position from January 1, 2027, or as soon possible. This is a fixed-term position to end 24 months after the start date.
The postdoc position focuses on physics-driven machine learning methods for ground-based, airborne and drone-based transient electromagnetic (TEM) data. The work will build on anEMone, our fully differentiable TEM forward-modelling framework implemented in PyTorch, and use the electromagnetic physics to develop supervised and self-supervised deep learning models for TEM modelling and inversion.
Your key responsibilities will include:
The postdoc will have considerable freedom to shape the methodological direction of the research while contributing to the project's overall objective of developing robust and deployable physics-driven machine learning solutions for TEM data.
In addition to the colleagues at Department of Electrical and Computer Engineering, you will collaborate closely with the geo-physicists from the Hydrogeophysics Group (HGG) at the Department of Geoscience at Aarhus University, and with TEMcompany, our industrial project partner. You will also have the opportunity to supervise bachelor's and master's students.
We are looking for a highly motivated candidate with a strong background in deep learning, scientific machine learning or in-verse problems. The ideal candidate thrives in interdisciplinary settings and is interested in developing methods that combine physical modelling with real-world geophysical applications.
Required qualifications include:
Following qualifications will be considered as an advantage:
You will be based at the Department of Electrical and Computer Engineering (ECE) at Aarhus University, a dynamic and growing department committed to excellence in research, education, and innovation. Our research spans signal processing, machine learning, digital twins, and intelligent systems — all with a strong emphasis on real-world impact and societal relevance.
This position is anchored within the Signal Processing and Machine Learning section at ECE and will be mentored by Assistant Professor Muhammad Rizwan Asif, whose research focuses on developing advanced deep learning methods for geoscientific and environmental applications. Current research includes machine learning for transient electromagnetic data, groundwater mapping, remote sensing and the integration of physical modelling with data-driven methods.
Your daily work will be closely linked to researchers in the Hydro-geophysics Group (HGG) at the Department of Geoscience, an internationally recognized leader in the development and application of transient electromagnetic methods for subsurface mapping. You will also collaborate closely with TEMcompany, the industrial project partner, providing direct access to ground-based and drone-based TEM systems, field datasets and operational processing workflows.
We offer a vibrant and inclusive research environment with a strong interdisciplinary foundation and a clear commitment to real-world impact. Denmark is consistently ranked among the best countries in the world for work-life balance and quality of life. Family-friendly policies include generous parental leave, subsidised childcare, and access to excellent public healthcare and education. As a postdoc at Aarhus University, you will benefit from a supportive and flexible workplace culture that values diversity and offers excellent conditions for researchers and their families.
Specifically, we offer:
We warmly welcome applications from all qualified candidates and strongly encourage women and individuals from underrepresented backgrounds in STEM to apply.
Tagged as: Life Sciences
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