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Mohd AamirMA

Mohd Aamir

Data Scientist

200 €/jour
Nice, FR
0-2 ans

Délai de réponse moyen : 1h

À propos de Mohd

As a Data Scientist with a passion for solving complex real-world problems, I specialize in Machine Learning, Deep Learning, and AI, with hands-on experience in anomaly detection, diffusion models, LLM, computer vision, NLP and CI/CD pipelines.

I have also worked with LLMs, RAG, Langchain with tool calling to create an Enterprise AI Agent:


  • Anglais

    Bilingue ou natif

  • Français

    Capacité professionnelle limitée

Accepte de travailler sur site
Nice (jusqu’à 50 km)

Expériences

  • EURECOM
    Data Scientist
    février 2024 - août 2025 (1 an et 6 mois)
    Sophia Antipolis, France
    • Engineered state-of-the-art anomaly detection pipeline for multivariate time series data by adapting deep learning models enabling direct modeling of missing values and improving anomaly detection F1-score by 12% over Huawei's baseline models.
    • Benchmarked 12+ architectures (e.g. LSTM/TCN/Transformer) on synthetic and confidential Huawei datasets; implemented algorithms to inject controlled missing timestamps for testing.
    • Integrated 3 pre-trained diffusion models into MLflow, enabling real-time inference of missing 3D holographic views during teaching sessions for the EU Adroit6G project.
    • Validated outputs through various KPIs such as SSIM/PSNR, sustaining over 95% SSIM on generated views.
    • Collaborated with 20+ researchers and industry partners across Europe, representing EURECOM in bi-weekly consortium meetings and delivering technical papers and work packages.
    Machine learning Stable Diffusion IA générative Deep Learning
  • HUAWEI
    Computer Vision Intern
    mars 2023 - septembre 2023 (6 mois)
    Mougins, France
    • Generated a dataset of 50,000 noisy raw images by reversing Huawei's proprietary image processing pipeline, enabling supervised training for raw image denoising.
    • Implemented a CNN-based raw image denoising model in PyTorch, pruned CNN to cut inference time by 21% with PSNR drop less than 3 dB.
    • Optimized training pipelines/hyperparameters, reducing training time by 15% on Huawei's GPU clusters.
    Image Processing Traitement d'image CNN Computer Vision

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Formations

  • Master of Science
    EURECOM
    2023
    Master of Science
  • Bachelor of Technology
    SRM University
    2020
    Bachelor of Technology

Compétences

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