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Une startup innovante à Paris recrute deux doctorants sous le schéma CIFRE pour des recherches sur les systèmes de recommandation en IA. Les candidats travailleront sur des projets de pointe, combinant recherche académique et déploiement industriel, avec un fort accent sur l'apprentissage continu et l'équité dans le recrutement.
PhD Positions (CIFRE) : GenAI, Recommendation Systems, Fairness – AI Startup – Paris
2 CIFRE PhD Positions – AI for Recruitment
HrFlow.ai x Paris Research Lab
Location : Paris, France
Openings : 2 (distinct research topics)
Duration : 3 years (CIFRE contract)
HrFlow.ai is hiring two PhD candidates under the French CIFRE scheme, in collaboration with one of the leading deep learning research labs in Paris . Each PhD will focus on one of the following topic :
This is a rare opportunity to combine rigorous academic research with industrial-scale deployment, working with large HR datasets and cutting-edge transformer-based models.
What is a CIFRE PhD?
A CIFRE PhD is a French government-funded program where candidates are employed full-time by a company while completing their doctorate in partnership with a public research lab. It offers the best of both worlds : scientific depth and industrial relevance.
If you already have an academic partner or lab in mind, we welcome proposals and are happy to initiate a collaboration.
Position 1 : PhD (CIFRE) – Continual Learning & Online Ranking for HR Recommendation Systems
Research Abstract
HR recommendation systems must continuously adapt to evolving candidate profiles and job postings. Static, batch-trained models struggle to stay up-to-date and often fail to maintain relevance over time without costly retraining. This PhD project explores how continual learning (CL) and online learning to rank (OLTR) can enable adaptive, scalable HR systems built on structured JSON data —including parsed resumes and job descriptions.
Conducted in partnership with HrFlow.ai , this research is anchored in real-world, structured HR datasets and production systems. Expected contributions include new algorithms for lifelong ranking and dynamic representation learning tailored to HR applications.
Key References :
Responsibilities
About You – Must Have
Position 2 : PhD in Bias & Fairness in Recruitment Ranking Systems
Research Abstract
Recruitment platforms increasingly rely on deep learning and large language models to rank candidates for job opportunities. While these systems can enhance efficiency and scale, they also risk amplifying historical and systemic biases. This PhD project aims to investigate fairness in candidate ranking systems, leveraging structured, JSON-formatted resume and job data from HrFlow.ai .
The research will explore how bias emerges in state-of-the-art recommendation and ranking systems applied to natural language inputs, and how it can be mitigated through recent advances in fairness-aware learning [1], counterfactual data augmentation [2], and debiasing techniques for pre-trained language models [3]. Key fairness notions—such as exposure fairness and equal opportunity [4]—will guide the design of novel evaluation frameworks and ranking algorithms that balance relevance, interpretability, and equity.
The project will combine theoretical modeling with large-scale empirical analysis on real-world recruitment data, contributing to the development of fair and accountable AI systems in hiring.
Key References :
Responsibilities
About You – Must Have
About HrFlow.ai
After two years of intense AI research and development at Ecole Normale Supérieure and Ecole Centrale Paris, HrFlow.ai was founded in June 2016 to solve the labor market and employment challenges at scale using the latest innovations in AI.
Having developed a proprietary AI and workflow technology from the ground up that unifies HR data silos, identifies the right candidates for the right jobs without bias, and automates it all, HrFlow.ai has already gained traction with over +1,000 clients, large and small.
HrFlow.ai raised an initial seed round of 2.3M$ in 2018 from some of the most successful technology entrepreneurs in Europe and the United States, including Xavier Niel (Free Telecom & Station F), Dominique Vidal (Index Ventures), Romain Niccoli (Criteo & Pigment), Jean-Baptiste Rudelle (Criteo), Franck Le Ouay (Criteo & LIFEN), Thibaud Elzière (Fotolia & e-Founders), and has since self-funded its growth.
We love AI engineering, problem-solving, and business. Join our diverse team and help us build the next chapter of our exciting growth!
Try out our technology here : .
Application Process