About Abdelkabir
- Systèmes RAG avancés : Création de pipelines de récupération augmentée (RAG) optimisés pour transformer vos données internes en connaissances actionnables avec une précision maximale.
- Architectures Multi-Agents : Conception d'agents autonomes capables d'orchestrer des tâches complexes, d'automatiser des workflows métier et d'interagir avec vos services backend via LangChain ou LlamaIndex.
- Développement Full-Stack & Cloud : Maîtrise complète de la stack moderne (Next.js, NestJS, Python) et des pratiques DevOps (Docker, CI/CD) pour garantir des applications scalables et sécurisées.
- Optimisation & Fine-tuning : Expertise en prompt engineering avancé, gestion des coûts et adaptation de modèles pour des performances spécifiques à votre domaine.
French
Fluent
Experience
- SeffaneAI EngineerMay 2024 - Today (2 years and 2 months)France– LLM-Based Systems (RAG): Designed and deployed production-grade Retrieval-Augmented Generation (RAG) pipelines in Python, integrating LLMs with vector databases for intelligent knowledge retrieval and response generation. – Multi-Agent Architecture: Architected and implemented multi-agent systems orchestrating LLM reasoning with backend services using LangChain and LlamaIndex to automate recruitment and business workflows. – Interview Evaluation Agent: Built an AI-powered interview agent capable of evaluating candidate responses, generating structured feedback, and automating screening processes end-to-end. – OpenAI & Azure OpenAI Integration: Integrated OpenAI and Azure OpenAI APIs into production pipelines, managing API versioning, rate limits, and cost optimization strategies. – Prompt Engineering & Optimization: Applied advanced prompt engineering strategies, structured system prompts, and evaluation loops to improve reasoning accuracy and response consistency across LLM-powered workflows. – LLM Fine-Tuning Concepts: Worked with fine-tuning methodologies (parameter-efficient approaches, instruction tuning) and model adaptation strategies to improve domain-specific performance. – Embeddings & Semantic Search: Designed semantic search pipelines using embeddings and vector storage to enhance contextual retrieval accuracy at scale. – Knowledge Graph Integration: Integrated structured knowledge representations and graph-based relationships into AI workflows to improve factual consistency and contextual reasoning.
- SeffaneSoftware Engineer & DevOps EngineerMay 2024 - Today (2 years and 2 months)France– Full-Stack Development: Designed and developed scalable applications using Next.js (frontend) and Express.js (backend) with secure authentication (JWT, session management). – Microservices Architecture: Restructured backend into 9 microservices to improve maintainability, scalability, and system isolation. – CI/CD & Containerization: Implemented CI/CD pipelines using GitHub Actions and Docker; containerized AI and web services with Docker Compose for dev/test/prod environments. – Production Deployment: Deployed and managed applications on Ubuntu VPS servers, handling infrastructure, monitoring, and high availability for AI-powered services.
- IRMA ServiceDevOps EngineerFebruary 2024 - May 2024 (3 months)Morocco– CI/CD Pipelines: Created and managed CI/CD pipelines using Jenkins and GitHub Actions for test and production environments. – Containerization & Infrastructure: Containerized applications with Docker; configured master-slave DB architectures and load balancing for high availability.
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Education
- Master's in Business IntelligenceFaculty of Science and TechnologyMaster's in Business Intelligence
- Bachelor's in Software EngineeringFaculty of Science and TechnologyBachelor's in Software Engineering