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Lily Weng

adversarial robustness

deep neural networks

deep learning

explainable ai

probing

responsible ai

trustworthy machine learning

machine unlearning

llm safety

interpretable ml

robust machine learning

llm interpretability

jailbreak attack

adv-llm

llm unlearning

1

presentations

11

number of views

SHORT BIO

Lily Weng is an Assistant Professor in the Halıcıoğlu Data Science Institute at UC San Diego. She received her PhD in Electrical Engineering and Computer Sciences (EECS) from MIT in August 2020, and her Bachelor and Master degree both in Electrical Engineering at National Taiwan University. Prior to UCSD, she spent 1 year in MIT-IBM Watson AI Lab and several research internships in Google DeepMind, IBM Research and Mitsubishi Electric Research Lab. Her research interest is in machine learning and deep learning, with primary focus on trustworthy AI. Her vision is to make the next generation AI systems and deep learning algorithms more robust, reliable, explainable, trustworthy and safer. For more details, please see https://lilywenglab.github.io/.

Presentations

Towards Trustworthy Deep Learning | VIDEO

Lily Weng

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