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Aymen FkirAF

Aymen Fkir

Machine Learning Engineer

200 €/día
Tunis, TN
0-2 años

Tiempo medio de respuesta: 1h

Acerca de Aymen

  • Inglés

    Bilingüe o nativo

  • Árabe

    Bilingüe o nativo

  • Francés

    Competencia profesional básica

Solo teletrabajo
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Experiencia

  • EVIMO
    Machine Learning Engineer
    diciembre de 2025 - Hoy (6 meses)
    Architecting a scalable, end-to-end RAG pipeline for a French startup, focusing on robust data ingestion, optimized vector indexing, and retrieval consistency to deliver high-performance LLM-driven solutions.Architecting
  • Omdena
    Machine Learning Engineer
    octubre de 2025 - diciembre de 2025 (2 meses)
    - Architected an extensible Python synthetic data framework using OOP principles and inheritance to generate diverse, multi-domain logs while ensuring 100% seeded determinism for reproducible model validation.

    - Co-led a data team of 10 collaborators, managing task delegation and technical workflows to deliver high-quality, schema-aligned datasets for the classification pipeline.

    - Developed CLI tooling and Makefile integrations to streamline the data generation process, enabling users to produce structured datasets via simple command-line interfaces.

    - Engineered robust CI and QA workflows by implementing unit tests for data quality and determinism, while debugging pipeline errors to ensure stable project builds.
  • DeepVolt
    Data Scientist
    febrero de 2025 - junio de 2025 (4 meses)
    Tunis, Tunisia
    • - Designed and implemented a scalable pipeline that processed over 20 GB of raw GPS data into detailed traffic flow maps across France.
    • - Developed a traffic upscaling model using ensemble learning (CatBoost, XGBoost, LightGBM) to estimate real-world traffic from sparse probe data, achieving an R² of 0.83.
    • - Enhanced DeepVolt's DLIA prediction model by integrating new traffic-based features (e.g., capture score, EV estimates, demand-supply ratios), improving average utilization prediction R² from 0.50 to 0.75.
    • - Delivered a solution that saved the company over £40,000 by avoiding the purchase of processed mobility data.
    • - Contributed to the launch of a new standalone traffic flow feature within the DeepVolt platform, supporting clients in data-driven EV infrastructure planning.

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Formación

  • Generative AI with Diffusion Models intro
    Generative AI with Diffusion Models intro
  • Engineer's degree
    Ecole Supérieure Privée d'Ingénierie et de Technologies
    2028
    Engineer's degree

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