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Miguel Aguilar-OrtegaMA

Miguel Aguilar-Ortega

Creating AI solutions for business clients

300 €/día
Madrid, ES
3-7 años

Tiempo medio de respuesta: 1h

Acerca de Miguel

Data Scientist (5+ years) | Led Classic ML projects using Kubernetes, Docker, MLflow, Azure & GenAI initiatives with Azure AI Foundry and Azure AI Search. Delivering scalable, end-to-end solutions across different industries
  • Español

    Bilingüe o nativo

  • Inglés

    Competencia profesional completa

Solo teletrabajo
Lleva a cabo sus proyectos principalmente en remoto

Experiencia

  • Astara
    Data Scientist
    abril de 2024 - Hoy (2 años y 2 meses)
    Developed machine learning models to optimize business processes, handling end-to-end workflows from data preparation to deployment on Azure Machine Learning. Built automation solutions using Generative AI tools like Azure AI Foundry and PromptFlow. Gained practical experience with Retrieval-Augmented Generation (RAG) to enhance language models and improve user interaction and business efficiency.
  • Atos
    R&D Engineer in Artificial Intelligence
    enero de 2022 - marzo de 2024 (2 años y 2 meses)
    GreenMov https://green-mov.eu/
    Development and deployment of ML models using Python libraries including scikit-learn, pandas, tensorflow, statsmodels, numpy, nltk, and tools like Docker, Kubernetes, MLFlow, KServe, and SQL to address mobility challenges within the context of Smart Cities. Leading technical coordination with the architecture team to integrate AI models effectively. Utilization of Smart Data Models to standardize information sharing across platforms.
    SOLSTICIAhttps://www.linkedin.com/company/proyecto-solsticia?trk=p ublic_post_comment-text
    Development of a monitoring system using Kubeflow, MLFlow, PostgreSQL, fastapi and evidentlyai to enhance the model lifecycle in Kubernetes environments. Development and deployment of AI models to support advanced analytics and decision-making processes, employing tools such as Kubeflow Pipelines, tensorflow, scikit-learn, MLFlow, and SQL.
  • Applus
    Data Scientist
    julio de 2020 - diciembre de 2021 (1 año y 5 meses)
    Development and deployment of AI models for analyzing client surveys using Natural Language Processing techniques, with Python packages such as nltk, fastapi, scikit-learn, and pandas, achieving an 80% reduction in survey analysis time. Creation of dashboards with Qlik to summarize and visualize information, supporting data analysis. Extract, synthesize, and interpret large volumes of data hosted in relational databases, including SQL Server and MySQL.

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Formación

  • PhD Candidate in signal Theory and Communications, specializing
    University of Alcalá and Instituto Nacional de Técnica Aeroespacial.
    PhD Candidate in signal Theory and Communications, specializing in Artificial Intelligence
  • Deep Learning Specialization – DeepLearning.AI
    2021
    Deep Learning Specialization – DeepLearning.AI

Conjunto de habilidades profesionales

Categorías