ayoub sahlaoui
Fès
ayoub sahlaoui
Data Science Engineer & Full-Stack Developer
Catégorie : Assistance informatique
I’m a data scientist and machine-learning researcher with a foundation in software engineering. My experience spans
applied AI research, data-driven experimentation, and full-stack development.
In 2026, I completed a six-month Erasmus+ research internship at the University of Limerick, where I studied
parameter-efficient adaptation of V-JEPA 2 for egocentric action anticipation. Using LoRA, I adapted a 307-million-
parameter video model while training only 0.13% of its parameters. The best configuration improved action mean-class
Recall@5 from 16.39% to 18.67%, a 13.9% relative improvement. This research was accepted as a paper at IMVIP 2026,
and I defended my master’s thesis in June 2026.
Before moving deeper into data science and machine learning, I gained practical software-engineering experience at
Octobot Consulting. There, I contributed to an insurance management application built with Laravel, Angular, REST
APIs, JWT authentication, and MySQL.
My path through software engineering, data science, and academic research has given me a broad perspective on how
ideas become working systems. I’m especially interested in efficient machine learning, computer vision, and the
engineering behind dependable AI. I enjoy challenging problems, careful experimentation, and turning complex
technical work into conclusions that can be clearly understood.
applied AI research, data-driven experimentation, and full-stack development.
In 2026, I completed a six-month Erasmus+ research internship at the University of Limerick, where I studied
parameter-efficient adaptation of V-JEPA 2 for egocentric action anticipation. Using LoRA, I adapted a 307-million-
parameter video model while training only 0.13% of its parameters. The best configuration improved action mean-class
Recall@5 from 16.39% to 18.67%, a 13.9% relative improvement. This research was accepted as a paper at IMVIP 2026,
and I defended my master’s thesis in June 2026.
Before moving deeper into data science and machine learning, I gained practical software-engineering experience at
Octobot Consulting. There, I contributed to an insurance management application built with Laravel, Angular, REST
APIs, JWT authentication, and MySQL.
My path through software engineering, data science, and academic research has given me a broad perspective on how
ideas become working systems. I’m especially interested in efficient machine learning, computer vision, and the
engineering behind dependable AI. I enjoy challenging problems, careful experimentation, and turning complex
technical work into conclusions that can be clearly understood.
Horaires de travail
- Lundi:08h00 à 18h00
- Mardi:08h00 à 18h00
- Mercredi:08h00 à 18h00
- Jeudi:08h00 à 18h00
- Vendredi:08h00 à 18h00
- Samedi:Non disponible
- Dimanche:Non disponible
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