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Email

Address

Im Oberen Werk 1
66386 St. Ingbert (Germany)

Awards (selection)

2025: Werner-von-Siemens-Fellow

2025: ERC Starting Grant

2024: GI Junior-Fellow 

2024: Busy Beaver Award "Differential Privacy: Mathematical Foundations and Applications in Machine Learning“, Saarland University

 

Short Bio

Franziska Boenisch is a tenure-track faculty member at the CISPA Helmholtz Center for Information Security. At CISPA, she co-leads the SprintML Lab (Secure, Private, Robust, Interpretable, and Trustworthy Machine Learning), where her research focuses on advancing trustworthy machine learning. Prior to joining CISPA, she was a Postdoctoral Fellow at the Vector Institute for Artificial Intelligence, working under the supervision of Prof. Dr. Nicolas Papernot. She received her PhD from Freie Universität Berlin, where she also served as a research associate at the Fraunhofer Institute for Applied and Integrated Security (AISEC).

CV: Last stations

Since 2023
Tenure-Track Faculty at CISPA
2022 - 2023
Postdoctoral Fellow - Vector Institute for Artificial Intelligence, Toronto
2019 - 2022
PhD Student and Research Associate - Department of Secure Systems Engineering, Fraunhofer AISEC

Publications by Franziska Boenisch

Year 2026

Conference / Medium

European Conference on Computer Vision (ECCV) Data Circuit Breaker: Identifying Training, Test, and Generated Data in Image Generative Models

Conference / Medium

The 19th European Conference on Computer Vision (ECCV), 2026 MultiMem: Measuring and Mitigating Memorization in Multi-Modal Contrastive Learning

Conference / Medium

IH&MMSec '26: ACM Workshop on Information Hiding and Multimedia Security Watermark Degradation Across Model Iterations

Conference / Medium

Proceedings of the ACM Asia Conference on Computer and Communications Security ADAGE: Active Defenses Against GNN Extraction

Conference / Medium

International Conference on Machine Learning (ICML) Finding DoRI: Discovery of Retained Images in Diffusion Models

Conference / Medium

International Conference on Machine Learning (ICML) Concept Removal in Frontier Image Generative Models

Conference / Medium

International Conference on Learning Representations (ICLR) SERUM: Simple, Efficient, Robust, and Unifying Marking for Diffusion-based Image Generation

Conference / Medium

International Conference on Learning Representations (ICLR) Natural Identifiers for Privacy and Data Audits in Large Language Models

Conference / Medium

International Conference on Learning Representations (ICLR) Benchmarking Empirical Privacy Protection for Adaptations of Large Language Models

Conference / Medium

International Conference on Learning Representations (ICLR) Data Provenance for Image Auto-Regressive Generation