About speaker

Eszter Windhager

ONEKEY

Data Scientist

I am the sole data scientist at OneKey, where I support a firmware‑vulnerability detection system and a compliance wizard development using machine learning and large language models. I previously built and led the data‑science team at Starschema (acquired by HCL), delivering machine‑learning and data analytics solutions for healthcare, manufacturing and other industries. Earlier, I took part in predictive‑modeling and ML‑based security product development and I also did data science consultancy for seven years. I have taught applied data science as a visiting faculty instructor at CEU (Budapest), co‑founded R‑Ladies and PyLadies Budapest meetup groups, and serve on international data‑science program committees.

Talk details

Talk
AI/ML Intermediate

Firmware Health Check: ML & LLM Diagnostics

Eszter Windhager
Eszter Windhager Data Scientist at ONEKEY
Connected devices such as routers, cameras, sensors and industrial controllers run embedded software (firmware) that is often overlooked but can create major risks across software supply chains. Studying firmware involves extracting and analysing this software to find vulnerabilities that could be exploited.
This talk gives a brief, non‑technical overview of what firmware is and why studying it matters, then focuses on how data science and AI can reduce manual effort and improve accuracy in the firmware‑analysis workflow. Concrete examples include a small neural network for processor‑architecture identification and data‑driven methods to improve software‑component and version detection. In addition to classical machine‑learning models, we leverage LLMs for component detection in cases where traditional techniques fall short. This hybrid approach improves recall and reduces manual review effort in production pipelines.
I also introduce an AI‑assisted compliance wizard that parses documentation, ingests analysis outputs, maps findings to common compliance items, and generates reports. Attendees will leave with practical patterns for applying ML and LLMs to accelerate security analysis and compliance assessments in embedded environments.
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Data

Leadership

Product

AI/ML

UX/UI

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