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PhD position (f/m/d) Cross-Sensor Transfer Learning for Long-Term Forest Biomass and Structure Estim

PhD position (f/m/d) Cross-Sensor Transfer Learning for Long-Term Forest Biomass and Structure Estim

Karlsruher Institut für Technologie

Forschung

Karlsruhe

  • Art der Beschäftigung: Teilzeit
  • 50.000 € – 68.000 € (von XING geschätzt)
  • Hybrid
  • Zu den Ersten gehören

PhD position (f/m/d) Cross-Sensor Transfer Learning for Long-Term Forest Biomass and Structure Estim

Über diesen Job

gemeinsam einzigartig

PhD position (f/m/d) Cross-Sensor Transfer Learning for Long-Term Forest Biomass and Structure Estimation Using Established and Next-Generation SAR Missions
part time 75%

Do you have a strong interest in remote sensing, forests, and Earth observation? Are you excited about combining next-generation satellite missions with machine learning to reconstruct long-term forest dynamics? If so, we invite applications for a PhD position at the Institute of Photogrammetry and Remote Sensing (KIT-IPF) , as part of the International Research Training Group C4LaND .

Organisationseinheit

Institut für Photogrammetrie und Fernerkundung (IPF)

Ihre Aufgaben

Forests play a central role in the land-use nexus by providing carbon storage, biodiversity, and renewable resources, while being increasingly affected by land-use change and climate extremes. Robust, spatially explicit and temporally consistent information on forest biomass and structure is essential for assessing long-term land-use trade-offs and informing integrated modelling and governance frameworks. Recently launched Synthetic Aperture Radar (SAR) satellite missions have been specifically designed to retrieve three-dimensional forest structure and above-ground biomass with high sensitivity, but their observational records are short. In contrast, established SAR missions such as Sentinel-1 offer dense and consistent time series extending back more than a decade, albeit with limited biomass sensitivity.

This PhD position is part of the International Research Training Group C4LaND and focuses on developing transfer learning approaches that link forest above-ground biomass and structure estimates from next-generation, biomass-oriented SAR missions to long-term SAR archives, thereby enabling spatially explicit reconstruction of forest dynamics at least back to the beginning of the Sentinel-1 era. The project will be hosted at KIT (Karlsruhe Institute of Technology), Institute for Photogrammetry and Remote Sensing (IPF), under the supervision of Prof. Stefan Hinz . Your Melbourne co-advisor will be Dr. Jagannath Aryal.

Lines of research include

  • Developing cross-sensor transfer learning frameworks based on multi-level SAR observables for above-ground biomass estimation by exploiting polarimetric SAR features across sensor generations and enriching them with higher-order structural information from Polarimetric InSAR and Tomographic SAR where available.
  • Exploration of multi-modal and multi-model support using optical and hyperspectral data to improve robustness and generalizability of transfer learning between SAR sensors.
  • Sensor-aware uncertainty characterization and error transfer, with emphasis on decomposing the error budget and estimating loss of precision associated with products derived from established missions compared to new biomass missions.
  • Validation across long-term forest observatories in multiple regions, including Europe (TERENO), Australia (CSIRO Permanent Rainforest Plots), and potentially Brazil, ensuring transferability across forest types, climatic zones, and land-use contexts relevant to C4LAND.

Eintrittstermin

October 2026

Ihre Qualifikation

  • An above-average M.Sc. degree (or equivalent) in remote sensing, environmental sciences, computer science, forestry or a related field.
  • Strong background and interest in Earth observation, remote sensing of forests and SAR data processing
  • Experience with machine learning, domain adaptation, or transfer learning methods is highly desirable.
  • Excellent communication skills and enthusiasm for working in an international and multidisciplinary research environment.
  • Fluency in English, written and spoken
  • Willingness to undertake a one-year research placement at the University of Melbourne, Australia and comply with formalities at both institutions.

Das bieten wir Ihnen

Become a member of staff of the only German University of Excellence that conducts large-scale research on the national level. Work under excellent working conditions in an international environment and be active in research and academic education for our future. Benefit from specific training when starting your job and from a wide range of further qualification offers. Use our flexible working time models (flexitime, work from home), our sports and leisure offers, as well as our child and holiday care services. We also pay a share of EUR 25/month in the Job Ticket Baden-Württemberg. Enjoy a large variety of dishes, snacks, and beverages at our canteens.

Salary

Salary category 13 TV-L, depending on the fulfillment of professional and personal requirements.

Gehalts-Prognose

Unternehmens-Details

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Karlsruher Institut für Technologie

Forschung

Karlsruhe, Deutschland

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