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Abdessalam BouchekifAB

Abdessalam Bouchekif

NLP, LLM, ML

EUR 600/Tag
1 Projekt
Paris, FR
8-15 Jahre

Durchschnittliche Reaktionszeit: 1h

Über Abdessalam

Expert en Intelligence Artificielle (Machine Learning, Deep Learning, Traitement automatique de la langue, Data Science).

Prototypes, supervision des développements, conseil et veille technologique, montage de projet de recherche, communication scientifique, crédit impôt-recherche, j'interviens tout au long du cycle de R&D.
  • Französisch

    Verhandlungssicher

  • Englisch

    Verhandlungssicher

  • Arabisch

    Muttersprachlich oder zweisprachig

Vor Ort möglich
Paris (bis zu 50 km), Massy (bis zu 30 km), Paris (bis zu 20 km)

Projekt- und Berufserfahrung

  • Huawei
    Senior Researcher NLP
    E-COMMERCE
    September 2020 - Heute (5 Jahre und 9 Monate)
    Helsinki, Finnland
    Senior Researcher NLP - Building Question-Answering System with Llama-2–7b Model and RAG (Retrieval Augmented
    Generation)
    - Conducted research and experiments on Hate Speech Detection project (offensive, adult, discrimination, and terrorism).
    - Automatically generated offensive data using OpenAI API.
    - Implemented advanced multilingual solutions for detecting online offensive content by improving
    Pre-Trained Multilingual Models with Vocabulary Expansion.
    - Implemented multilingual solutions for detecting online adult content. The model is based on
    fine-tuning LLaMA 2 with LoRA.
    - Participed on share tasks: OSACT 2020, HASOC 2022, and HASOC 2023, SemEval 2022.

    LLM chainlit langchain chromadb Llama 2
  • Aquila Data Enabler
    Senior Applied Scientist NLP
    E-COMMERCE
    März 2020 - September 2020 (7 Monate)
    Paris, Frankreich
    Participated in the implementation of a question-answering system using a large database of PDF
    documents. The implemented model is based on fine-tuned BERT and TAPAS transformers.
    BERT TAPAS
  • Epita
    Analyse des sentiments, Chatbot, Reconnaissance d'entités nommées
    SOZIALE NETZWERKE
    Oktober 2017 - Heute (8 Jahre und 8 Monate)
    Paris, Frankreich
    Worked on different projects: detecting emotions in textual conversations, dialect identification and
    sentiment analysis.
    + Developed a system for classifying textual dialogues into emotion classes such as Angry, Happy, Sad,
    and Others. Utilized various deep neural network techniques including Recurrent Neural Networks
    (LSTM, B-LSTM, GRU, B-GRU), Convolutional Neural Network (CNN), and Transfer Learning (TL).
    + Developed a system for classifying comments into one of 26 classes, corresponding to various dialects
    of Arabic language. The implemented system based on Recurrent Neural Networks (BLSTM, BGRU)
    using hierarchical classification. We started with a higher level of classification (8 classes) and then
    performed the finer-grained classification (26 classes).
    + Developed a system for classifying tweets into one of seven classes, corresponding to various levels
    of positive and negative sentiment intensity, that best represents the mental state of the tweeter. The
    main idea of our solution is to use transfer learning, which allows to avoid learning from scratch.
    Indeed, we start to train a first model to predict if a tweet is positive, negative or neutral. For this
    we use an external dataset which is larger and similar to the target dataset. Then, the pre-trained
    model is re-used as the starting point to train a new model that classifies a tweet into one of the seven
    various levels of sentiment intensity.
    Keras Deep Learning Python NLTK

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Ausbildung und Abschlüsse

  • Doctorat
    Université du Mans
    2016
  • Master en Machine Learning
    Université Paris Dauphine
    2012

Fähigkeiten (16)

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