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Ph.D. Researcher. Knowledge Discovery: From Unstructured Data to Shared Cognitive Maps

Open 43d posting dated last week

Summary

A PhD researcher will develop AI/ML models to transform unstructured data into interactive knowledge graphs and personalized cognitive maps, focusing on interpretable and adaptive knowledge representation systems.

Constructor University in collaboration with Constructor Knowledge Labs and Constructor Technology


About the Position

The research group led by Prof. Dr. Andrey Ustyuzhanin at Constructor University, in collaboration with Constructor Knowledge Labs (CKL) and Constructor Technology (industry partner), invites applications for Ph.D. student positions in the field of Computer Science, with a focus on Artificial Intelligence (AI) and Machine Learning (ML).

This PhD position is part of an initiative to advance knowledge representation and adaptive reasoning systems. The research will focus on developing flexible frameworks for actionable knowledge representation that support storage, retrieval, and dynamic adaptation of information across diverse tasks.

Key objectives include:

  • Transforming unstructured data into interactive knowledge graphs and personalized cognitive maps.
  • Designing models that provide interpretable, persistent, and navigable structures of knowledge.
  • Addressing challenges such as hierarchy, composability, and coarse-graining for robust, task-specific reasoning.
  • Exploring individual and community-level knowledge modeling, including personalized domain maps, profile extraction from artifacts (e.g., papers, courses), and cross-domain abstraction.

The overarching goal is to create systems that enable transparent, adaptive, and spatially intuitive representations of knowledge, supporting both individual users and collaborative communities.


Applicant Profile

Mandatory requirements:

  • Holding recognized MSc degree (or equivalent) in Computer Science, AI, ML, or a related discipline.
  • Students holding BSc degree and exhibiting outstanding performance and extraordinary potential can apply for fast-track PhD.
  • Strong mathematical background supported with experience in defining and developing knowledge-graph or information retrieval systems.
  • Hands-on experience with large language models (LLMs) and their applications.
  • A track record of publications in AI/ML or related areas.
  • Documented experience in practical research work.
  • Strong skills in academic English writing (peer-reviewed papers, reports, or equivalent).

Funding & Appointment Terms

The appointment provides full financial coverage through a dedicated fellowship, comprising:

  • Monthly stipend of €1,650
  • Monthly research-cost allowance of €100 (Forschungskostenpauschale)
  • Health-insurance subsidy of €100 per month
  • Supplementary €550 mini-job allowance to support parallel part-time employment (optional)

Application Details

  • Expected start date: September, 2026

Application package must include:

  • Curriculum Vitae (CV);
  • Academic transcripts ;
  • A detailed letter of motivation outlining research interests and career goals;
  • 2 recommendation letters;

Applications to be reviewed on a rolling basis. Shortlisted candidates will be invited to interviews.

What this application asks

greenhouse

First Name, Last Name, Email, Phone, Resume/CV, Cover Letter

  • Preferred First Name optional
  • Where are you currently based?
  • Are you legally authorized to work in the country where this position is based? choose one
  • Do you require visa support? choose one
  • Please provide a link to your LinkedIn profile. optional
  • Please submit your Bachelor and Master's diploma (in original language and English) upload · optional
  • Academic transcripts upload · optional
  • A detailed letter of motivation outlining research interests and career goals upload · optional
  • 2 recommendation letters upload · optional
  • How did you hear about this opportunity? optional
  • If you were referred by an employee or heard about us via an event, please specify. optional

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