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A

Artificial Intelligence Engineer (Generative AI Engineer)

Accenture
🇪🇸 Spain
Hybrid
Senior
2 weeks ago
  • AI
  • Machine Learning
  • OpenAI
  • Agile
  • Natural Language Processing
  • Computer Vision
  • Azure
  • RAG
  • scikit-learn
  • PyTorch
  • TensorFlow
  • Python
  • Azure AI
  • Azure OpenAI
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Why Avanade? Because there’s literally no place like this

We have two parent companies that give us a strong Microsoft ecosystem with space to be ourselves.  People who thrive here are motivated, interested in learning and genuinely have a desire to be the best at what they do. If that sounds like you, then we’re the perfect match. You will have the opportunity to utilize the most advanced technology within the Microsoft ecosystem, collaborating with some of the world's largest and most renowned companies, as well as working alongside highly intelligent individuals. This environment allows you to make a significant impact on your career trajectory. If you are looking to enhance your skills and drive transformation within businesses, there is no better place to be.

The EME AI Delivery Hub

AI—and particularlyGenerative AI—is expected to profoundly impact every company over the coming years. Thanks to Microsoft and Avanade’s strategic investments in AI and OpenAI, we are uniquely positioned to help our clients becomeAI-first organizations.

TheEME AI Delivery Hub is an Iberia-based nearshore delivery center serving European and Middle Eastern clients, specialized in end-to-end AI and Advanced Analytics solutions. By joining the Hub, you will be part of a delivery pod working in an agile setup, owning AI initiatives fromproblem framing and data exploration to model development, deployment, and adoption. You will work closely with clients, guiding them throughout their AI and GenAI transformation journey.

Job Overview

As aSenior Analyst – AI & Data Science, you will design, develop, and deliver AI- and data-driven solutions that help our clients achieve measurable business outcomes. This role combinesstrong Data Science foundations withhands-on AI engineering, including recent GenAI use cases.

You will work across the full data science lifecycle:data exploration, feature engineering, model development, evaluation, and deployment, while also contributing to modern AI solutions such asLLM-based applications, NLP, computer vision, and predictive analytics, primarily onMicrosoft Azure.

Key Role Responsibilities

Day-to-day you will:

  • Design and deliverend-to-end Data Science and AI solutions, from business understanding and data exploration to model deployment and monitoring.
  • Performexploratory data analysis (EDA), feature engineering, and data preprocessing on structured and unstructured datasets.
  • Develop, train, evaluate, and optimizemachine learning and deep learning models, selecting appropriate algorithms and validation strategies.
  • Contribute toGenerative AI solutions, including LLM-based applications, prompt engineering, RAG architectures, and applied NLP use cases.
  • Translate business problems into analytical and ML formulations, clearly explaining trade-offs and results to both technical and non-technical stakeholders.
  • Support the preparation ofclient presentations, demos, and proposals, articulating analytical insights and AI-driven value.
  • Stay up to date with the latest advancements inData Science, ML, DL, and GenAI, and actively share knowledge within the team.
  • Contribute to reusable assets such ascode templates, analytical frameworks, and internal training materials.
  • Collaborate with senior team members and architects to identify opportunities where advanced analytics and AI can transform client operations.

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Key Role Skill & Capability Requirements

Core Skills

  • Strong foundation inData Science and applied Machine Learning, including supervised and unsupervised learning.
  • Hands-on experience withML/DL frameworks (e.g., scikit-learn, PyTorch, TensorFlow or equivalent).
  • Solid understanding ofmodel evaluation, validation, and performance metrics.
  • Experience working withstructured and unstructured data, including text data for NLP use cases.
  • Proficiency inPython for data analysis and ML development.

AI & GenAI

  • Experience or strong interest inGenerative AI, including LLMs, embeddings, prompt engineering, and retrieval-based approaches.
  • Familiarity withNLP, computer vision, forecasting, or optimization use cases is a strong plus.
  • Exposure toAzure AI / Azure Machine Learning / Azure OpenAI is highly valued.

Professional Skills

  • Strong analytical and problem-solving mindset, with the ability to structure ambiguous problems.
  • Ability to communicate insights clearly inEnglish and Spanish, both written and verbal.
  • Comfortable working inagile, client-facing environments.

Preferred Education Background

You likely hold abachelor’s and/or master’s degree in computer science, Data Science, Statistics, Mathematics, Physics, Engineering, or a related quantitative field. Equivalent practical experience is also valued.

Preferred Years of Work Experience:

  • 3+ years of applied experience delivering Data Science, Machine Learning, or AI projects in real-world environments.
  • Experience over the last few years may beheavily focused on GenAI, but grounded in solid ML/DL and analytical fundamentals.

What We offer

  • An accelerated and structuredtraining program on Microsoft Azure and AI services.
  • Hands-on exposure to real client projects acrosscomputer vision, NLP, forecasting, and GenAI (Azure OpenAI, chatbots, RAG).
  • Continuous learning through certifications, mentoring, and internal communities of practice.

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Artificial Intelligence Engineer (Generative AI Engineer) · Accenture

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