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Reinforcement learning hyper-parameter tuning in side-channel attacks

Job in 2600, Delft, South Holland, Netherlands
Listing for: Keysight Technologies SAles Spain SL.
Full Time position
Listed on 2026-05-30
Job specializations:
  • IT/Tech
    Cybersecurity, Data Security
Salary/Wage Range or Industry Benchmark: 60000 - 80000 EUR Yearly EUR 60000.00 80000.00 YEAR
Job Description & How to Apply Below
Position: Reinforcement learning based hyper-parameter tuning in side-channel attacks

Overview

Keysight is at the forefront of technology innovation, delivering breakthroughs and trusted insights in electronic design, simulation, prototyping, test, manufacturing, and optimization. Our ~15,000 employees create world‑class solutions in communications, 5G, automotive, energy, quantum, aerospace, defense, and semiconductor markets for customers in over 100 countries. Learn more about what we do.

Our award‑winning culture embraces a bold vision of where technology can take us and a passion for tackling challenging problems with industry‑first solutions. We believe that when people feel a sense of belonging, they can be more creative, innovative, and thrive at all points in their careers.

Keysight Device Security Lab, formerly Riscure, helps global leaders in semiconductor, mobile, media, automotive, and IoT secure their devices and embedded systems.

Deep learning models for SCA involve numerous hyperparameters (e.g., learning rates, layer sizes, batch sizes). Optimal configurations can significantly impact attack success but are usually searched via random or grid search, which is inefficient. Following RWP+21, this topic applies reinforcement learning to automate hyperparameter tuning, aiming to reduce manual effort and improve attack reproducibility.

RWP+21:
Rijsdijk, J., Wu, L., Perin, G., & Picek, S. (2021). Reinforcement learning for hyperparameter tuning in deep learning‑based side‑channel analysis. IACR Transactions on Cryptographic Hardware and Embedded Systems, 677-707.

Responsibilities
  • Learn about reinforcement learning strategies.
  • Customize reinforcement learning strategies in SCA model parameter and training parameter exploring.
  • Compare different strategies performance on benchmark datasets (symmetric and asymmetric SCA datasets).
  • Compare reinforcement learning strategy with grid search strategy.
Qualifications
  • Pursuing a Bachelor’s degree, Master’s degree, or thesis project in Computer Science, Electrical Engineering, Cybersecurity, Embedded Systems, Computer Engineering, or a related field.
  • Have Knowledge about reinforcement learning and Keras framework.
  • Programming experience in Python.
  • Interest in embedded systems, hardware security, cybersecurity, cryptography, software security, IoT security, or security testing.

Careers Privacy Statement. Keysight is an Equal Opportunity Employer.

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