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Computer Scientist (f/m/x) - Real-time Data Fusion
Job Description
Req ID:  4654
Place of work:  Bremerhaven
Starting date:  Immediately
Career level:  Graduates, Experienced professionals
Type of employment:  Part time, Full-time
Duration of contract:  initially up to 3 Years

Remuneration: Remuneration is in accordance with the Collective Agreement for the Public Sector - Federal Government (TVöD-Bund)

Enter the fascinating world of the German Aerospace Center (Deutsches Zentrum für Luft- und Raumfahrt e. V.; DLR) and help shape the future through research and innovation! We offer an exciting and inspiring working environment driven by the expertise and curiosity of our 12,000 employees from 100 nations and our unique infrastructure. Together, we develop sustainable technologies and thus contribute to finding solutions to global challenges. Would you like to join us in addressing this major future challenge? Then this is your place!

 

At the Institute for the Protection of Maritime Infrastructure in Bremerhaven, we research and develop innovative solutions to strengthen the resilience of maritime infrastructure and make it adaptable, safe and sustainable. Working closely with partners from research, industry and other maritime safety stakeholders, we combine technological innovation with practical expertise and offer you the chance to work on pioneering projects.

 

What you can expect

As a researcher in the Situational Awareness and Cybersecurity Group within the Department of Maritime Security Technologies, you will research and develop innovative algorithms for fusing radar data with other sensor data to create a robust, real-time and threat-adaptive situational picture in the maritime domain. You will develop and test methods for synchronised data fusion, quality assessment, weighting based on reliability and relevance, and the detection and correction of inconsistencies. You will place particular emphasis on resilience against interference and attacks (e.g. jamming, spoofing). The work is carried out in close cooperation with partners from research and industry. The results are directly incorporated into combined situational awareness systems and tested in real-world scenarios – with the aim of enabling early protective measures and sustainably strengthening the security of maritime infrastructure.

 

Your responsibilities

  • Designing and carrying out research on the fusion of radar data, vessel movement and other information to detect security anomalies in the maritime domain
  • Development and implementation of algorithms for anomaly detection in time series and geospatial data, in particular using unsupervised learning, autoencoders and active learning
  • Carrying out data preparation and fusion from heterogeneous sources, including temporal and spatial alignment as well as data quality control
  • Validation of the models using datasets from field experiments and long-term measurements
  • Publication of results at international conferences

 

What you bring to the role

  • A completed academic degree (master’s  / university diploma) in Computer Science, Software Engineering or another relevant field
  • Good knowledge of machine learning, particularly unsupervised learning, anomaly detection, time series analysis and their application to sensor data
  • Experience in developing efficient algorithms and data structures for data-intensive real-time applications
  • Practical experience in sensor data fusion, the analysis of large, heterogeneous datasets and the integration of geodata and time series
  • Programming skills in C++ and Python, as well as experience with data structures, algorithms, software architectures and development tools (e.g. CMake, Git, Docker, CI/CD)
  • Good written and spoken English, as well as the ability to communicate complex research findings clearly and precisely

We offer

DLR stands for diversity, appreciation and equality for all people. We promote independent work and the individual development of our employees both personally and professionally. To this end, we offer numerous training and development opportunities. Equal opportunities are of particular importance to us, which is why we want to increase the proportion of women in science and management in particular. Applicants with severe disabilities will be given preference if they are qualified.

 

We look forward to getting to know you!

 

If you have any questions about this position (Vacancy-ID 4654) please contact:

Jannis Stoppe
Tel.: +49 471 924199 43

or Maurice Stephan
Tel.: +49 471 924199 42