Base

Data Scientist

Lisboa, Lisbon Metropolitan Area, Portugal Entreprise: Jobio Client / Employeur: Inetum Portugal
Publié: 18.05.2026
Date de clôture: 02.07.2026
Référence du poste: 6493743fcbf43a0b1ea327cf5ba2de3e

Informations sur le poste

Emplacement
Lisboa, Lisbon Metropolitan Area, Portugal
Entreprise
Jobio
Client / Employeur
Inetum Portugal
Référence du poste
6493743fcbf43a0b1ea327cf5ba2de3e
Type d'annonce
Base
Permis de travail de l'UE requis
Non
Publié
18.05.2026
Date de clôture
02.07.2026

Description du poste

Company Description

Inetum is a European leader in digital services. Inetum’s team of 28,000 consultants and specialists strive every day to make a digital impact for businesses, public sector entities and society. Inetum’s solutions aim at contributing to its clients’ performance and innovation as well as the common good.

Present in 19 countries with a dense network of sites, Inetum partners with major software publishers to meet the challenges of digital transformation with proximity and flexibility.

Driven by its ambition for growth and scale, Inetum generated sales of 2.5 billion euros in 2023.

Job Description
  • Design & Deploy: Create machine learning models and tailored AI solutions.
  • Innovate: Fine-tune and extend Large Language Models (LLMs) including open-source and commercial models.
  • Optimize: Implement Retrieval-Augmented Generation (RAG) techniques for enhanced model efficiency.
  • Analyze: Perform exploratory data analysis and feature engineering to unlock better model performance.
  • Build Generative AI: Develop cutting-edge models for content creation, process automation, and innovation.
  • Apply Traditional ML: Utilize decision trees, SVMs, neural networks, and more to solve diverse problems.
  • Collaborate: Work alongside data engineers, product managers, and stakeholders.
  • Quality Assurance: Ensure high-quality AI solutions through rigorous testing and validation.
  • Document & Share: Maintain technical documentation for knowledge sharing and reproducibility.

Qualifications

Your Must-Have Skills:

  • Bachelor’s or Master’s degree in Computer Science, Data Science, Machine Learning, or a related field.
  • 3+ years of hands-on experience in machine learning and AI development.
  • Strong expertise in Generative AI (model training, fine-tuning, and deployment).
  • Experience with open-source and commercial LLMs.
  • Proficiency in implementing RAG techniques.
  • Experience with vector databases.
  • Advanced programming skills in Python with frameworks like TensorFlow, PyTorch, and Hugging Face.
  • Deep understanding of NLP techniques and architectures.
  • Practical experience with traditional AI/ML methods such as decision trees, SVMs, and neural networks. Practical experience with traditional AI/ML methods such as decision trees, SVMs, clustering and neural networks.
  • Familiarity with cloud platforms (AWS, GCP, or Azure) for AI/ML deployments.
  • Knowledge of MLOps practices and tools.
  • Strong problem-solving and analytical skills.
  • Effective communication in public and teamwork skills.
  • Fluency in English (C1 level or higher) is mandatory.
  • Willingness to learn French.

Nice-to-Have Skills:

  • Knowledge of reinforcement learning from human feedback (RLHF).
  • Familiarity with prompt engineering.
  • Understanding of ethical AI principles and model interpretability.
  • Fluency in French is a plus.

Compétences

apply blended learning apply for research funding apply research ethics and scientific integrity principles in research activities build recommender systems Business Analytics Business Intelligence collect ICT data communicate with a non-scientific audience Computational Biology Computer Simulation conduct research across disciplines create data models Data Engineering data ethics Data Mining Data Models data quality assessment Data Science data visualisation software define data quality criteria deliver visual presentation of data demonstrate disciplinary expertise design database in the cloud design database scheme develop data processing applications develop professional network with researchers and scientists Digital Curation disseminate results to the scientific community draft scientific or academic papers and technical documentation empirical analysis establish data processes evaluate research activities execute analytical mathematical calculations Hadoop handle data samples Healthcare Analytics image recognition implement data quality processes increase the impact of science on policy and society information categorisation Information Extraction integrate gender dimension in research integrate ICT data interact professionally in research and professional environments interpret current data LDAP LINQ make data-driven decisions manage data manage data collection systems manage findable accessible interoperable and reusable data manage ICT data architecture manage ICT data classification manage intellectual property rights manage open publications manage personal professional development manage research data Marketing Analytics mathematical modelling MDX mentor individuals multidisciplinary research N1QL normalise data online analytical processing operate open source software perform data cleansing perform data mining perform project management perform scientific research promote open innovation in research promote the participation of citizens in scientific and research activities promote the transfer of knowledge publish academic research quantitative analysis query languages report analysis results Research Design resource description framework query language Scientific Computing scientific literature Social Network Analysis SPARQL speak different languages State Estimation statistical modeling techniques Statistics synthesise information teach in academic or vocational contexts think abstractly Unstructured Data use data processing techniques use databases use spreadsheets software visual presentation techniques write scientific publications XQuery

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