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Engineer F / H : Generative AI agentic architectures for educational technologies

INRIA

Talence

Sur place

EUR 60 000 - 80 000

Plein temps

Il y a 12 jours

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Résumé du poste

Un laboratoire de recherche en IA basé à Talence, en France, cherche un ingénieur de recherche à contrat à durée déterminée. Vous participerez à des projets innovants en utilisant l'IA générative pour créer des exercices pédagogiques conformes. Un diplôme avancé en informatique, des compétences en Python et une expérience avec les systèmes IA sont requis. Des avantages comme des repas subventionnés et des possibilités de télétravail sont offerts.

Prestations

Repas subventionnés
Remboursement partiel des transports
Possibilité de télétravail
Événements sociaux et culturels
Formation professionnelle

Qualifications

  • Diplôme avancé en Informatique ou disciplines connexes.
  • Expertise en systèmes IA générative à grande échelle.
  • Expérience solide avec les frameworks d'apprentissage profond.
  • Capacité à travailler dans des équipes de recherche interdisciplinaires.

Responsabilités

  • Concevoir et évaluer des systèmes d'IA générative pour la création de contenus éducatifs.
  • Optimiser les architectures intégrant des modèles de langage avec des cadres pédagogiques.
  • Mener des expériences à grande échelle en classe.

Connaissances

Systèmes IA générative à grande échelle
Langages de programmation (Python)
Apprentissage profond (PyTorch, TensorFlow)
Ingénierie de prompt
Analyse des données d'apprentissage
Travail en équipe interdisciplinaire
Compétences en français

Formation

Master ou Doctorat en Informatique, IA, ou domaine connexe

Outils

Hugging Face
Description du poste
Contexte et atouts du poste

The Flowers AI & CogSci Lab at Inria, in partnership with EvidenceB, Café pédagogique, and ClassCode, is launching GAIMHE (Generative AI for Hybrid Mathematics Education), a large-scale research and innovation project funded by Bpifrance. This initiative addresses a critical challenge in educational technology : developing AI systems that combine the pedagogical rigor and personalization capabilities of Intelligent Tutoring Systems (ITS) with the flexibility and generative power of modern large language models.

Current ITS platforms, such as EvidenceB's AdaptivMaths, leverage cognitive science principles and structured pedagogical graphs to deliver personalized learning pathways to students. These systems have demonstrated effectiveness across tens of thousands of classrooms in France (primary, middle, and high schools, across multiple disciplines including AdaptivMaths and MIA Seconde). However, their development requires substantial manual content creation. Conversely, generative AI offers unprecedented flexibility but often lacks pedagogical grounding, cannot sustain long-term curriculum personalization, and raises concerns about energy efficiency and pedagogical biases.

GAIMHE will develop hybrid architectures that harness generative AI for automated content generation while maintaining pedagogical constraints, deploy targeted generative guidance aligned with established learning theories, and create compact student models for next-generation personalization algorithms. The project will leverage EvidenceB's extensive deployment infrastructure to work with authentic large-scale educational data and validate innovations in real classroom settings. In alignment with open science principles and through partnership with Région Île-de-France, major project outputs (datasets, models, software) will be released as digital commons under open-source licenses.

Mission confiée
  • Design, implement, and evaluate generative AI systems for automated creation of pedagogically compliant educational exercises and content
  • Develop and optimize agentic architectures integrating large language models with structured ITS frameworks, ensuring pedagogical alignment and computational efficiency
  • Implement and fine-tune small-scale generative models for student learning trajectory prediction and personalized curriculum adaptation
  • Deploy LLM-as-judge frameworks and reinforcement learning approaches to evaluate and improve pedagogical quality of AI-generated content
  • Conduct large-scale experiments analyzing learning traces and student interactions with hybrid AI systems in authentic classroom environments
  • Collaborate with pedagogical experts, cognitive scientists, and industrial partners to translate educational requirements into technical specifications
  • Contribute to open-source software development and documentation for digital commons dissemination
  • Participate in scientific valorization through publications, presentations, and technical reports
Compétences
Required Profile and Expertise
Essential qualifications :
  • Advanced degree (Master's or PhD) in Computer Science, AI, Machine Learning, or related field
  • Demonstrated expertise in large-scale generative AI systems (inference and training pipelines)
  • Strong experience with modern deep learning frameworks (PyTorch, TensorFlow, Hugging Face ecosystem)
  • Proficiency in training and optimizing small-to-medium scale language models
  • Experience with agentic architectures, LLM orchestration, and prompt engineering
  • Knowledge of LLM-as-judge methodologies and / or reinforcement learning for LLMs
  • Strong programming skills (Python required, other languages valued)
  • Sufficient mastery of French language for collaboration with French educational partners and documentation
  • Ability to work collaboratively in interdisciplinary research teams
Valued qualifications :
  • Experience with learning analytics, educational data mining, or education research
  • Knowledge of cognitive science, learning theories, or pedagogical design principles
  • Familiarity with ITS architectures or adaptive learning systems
  • Experience deploying ML systems in production environments
  • Contributions to open-source projects
  • Publications in relevant AI, ML, or educational technology venues

Position details : Location : Inria Bordeaux - Sud-Ouest, Talence, France

Contract type : Fixed-term research engineer position Starting date : As soon as possible

To apply : Send CV, cover letter, and relevant portfolio / GitHub links to with [application] in the subject line.

Avantages
  • Subsidized meals
  • Partial reimbursement of public transport costs
  • Possibility of teleworking and flexible organization of working hours
  • Professional equipment available (videoconferencing, loan of computer equipment, etc.)
  • Social, cultural and sports events and activities
  • Access to vocational training
  • Social security coverage

Rémunération

According to professional experience

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