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PhD in Earth System Modeling & Data Fusion

Job in Germany, Pike County, Ohio, USA
Listing for: Forschungszentrum Jülich
Full Time position
Listed on 2026-03-01
Job specializations:
  • Research/Development
    Data Scientist, Research Scientist
Salary/Wage Range or Industry Benchmark: 60000 USD Yearly USD 60000.00 YEAR
Job Description & How to Apply Below
Location: Germany

Organisation/Company Forschungszentrum Jülich Research Field All Researcher Profile First Stage Researcher (R1) Final date to receive applications 19 Jan 2038 - 03:14 (UTC) Country Germany Type of Contract To be defined Job Status Other Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure?

No

Offer Description

Area of research:

PHD Thesis

Your Job:

The PhD position is offered in the context of the HDS-LEE graduate school. We are looking for a highly motivated PhD candidate to join our world-leading research program in Earth System modelling and improving Earth System Modeling by better merging of measurement data and model simulations.
This PhD project focuses on improving how we estimate key parameters in land-surface and ecosystem models, which are essential for understanding climate change impacts. The work involves reviewing existing modeling and model–data fusion techniques, and developing faster, machine-learning–based tools that can stand in for slow model simulations. These tools will be used to test how model parameters influence results and to make parameter estimation more efficient.

The project will apply and evaluate these new methods at different sites and time periods, compare them with established approaches, and finally demonstrate their potential in a Europe-wide ecosystem reanalysis. The outcomes will include open-source software, scientific publications, and a PhD thesis.
Your tasks within framework in detail:

  • Conduct a literature review on modern techniques for combining models with observational data, with a focus on innovative parameter-testing and hybrid modelling approaches.
  • Gain a solid understanding of land-surface modelling and the land-surface model used in the project.
  • Develop simplified, fast-running model surrogates using machine-learning methods to replace very time-intensive simulations.
  • Design an efficient training strategy for these machine-learning tools, making use of existing model simulations and actively selecting new simulations where needed.
  • Build and test a model “emulator” that can quickly explore how changes in model parameters affect model behaviour, and validate it using independent sites and time periods.
  • Use the newly developed tools to estimate key ecosystem and land-surface parameters, and compare the results against existing model–data fusion methods.
  • Apply the improved parameter-estimation techniques in a larger-scale setting to demonstrate their potential for ecosystem reanalysis.
  • Prepare scientific publications and present results at conferences.
  • Publish the developed software openly with documentation.

Your Profile:

  • A Masters degree with a strong academic background in mathematics, computer science and earth science/engineering, or a related field
  • Proficiency in at least one programming language (Python, Matlab, R, C++, Julia, …)
  • Good analytical skills with a sound understanding of data evaluation
  • Knowledge of numerical simulation, for example with land surface or hydrological models
  • Genuine interest in data science and earth sciences
  • Good organizational skills and ability to work both independently and collaboratively
  • Effective communication skills and an interest in contributing to a highly international and interdisciplinary team
  • Motivation for academic development, supported by bachelor’s and master’s transcripts and two reference letters
  • Working proficiency in English for daily communication and professional contexts.(TOEFL or equivalent or exemption required)
  • Knowledge of German is beneficial

Our Offer:

We work on the very latest issues that impact our society and are offering you the chance to actively help in shaping the change! This HDS-LEE PhD position will be located at Forschungszentrum Jülich and RWTH Aachen. We offer ideal conditions for you to complete your doctoral degree:

  • Outstanding scientific and technical infrastructure for numerical simulation and inversion
  • A highly motivated group as well as an international and interdisciplinary working environment at one of Europe’s largest research establishments
  • Your working place is at…
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