Senior Data Analytics

ALPEE

Annecy

Sur place

EUR 60 000 - 80 000

Plein temps

14 jours+

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Résumé du poste

ALPEE, located in Annecy, is seeking a Senior Analytics & AI Engineer who will bridge Analytics Engineering and AI. The role involves evolving the semantic layer for BI, driving data quality, and supporting AI projects.

The ideal candidate will have over 5 years of experience in analytics/data engineering, proven dbt model delivery, and a collaborative mindset.

This position offers the chance to shape technical decisions and mentor junior engineers in a dynamic setting.

Qualifications

  • 5+ years in Analytics Engineering, Data Engineering, or a similar role with strong data modeling responsibility.
  • Proven track record delivering production-grade dbt models and semantic layers in a complex data environment.
  • Hands-on experience with AI or ML tooling in a data context.

Responsabilités

  • Own and evolve the semantic layer for analytics and BI needs.
  • Collaborate on pipeline design and feature engineering with Data Engineers and Data Scientists.
  • Mentor Analytics Engineers and contribute to best practices.

Connaissances

Data modeling
Analytics Engineering
AI/ML tooling
Collaboration
Mentorship

Outils

dbt
Azure ML

Description du poste

We are looking for a Senior Analytics & AI Engineer who genuinely lives at the intersection of

Analytics Engineering and AI — someone who understands that the quality of data models is

what makes or breaks an AI product, and who knows how to build both.

What you will do
  • Analytics Engineering — the core of the role
  • Own and evolve the semantic layer: curated, documented, and tested dbt models that serve BI, self-service analytics, and ML feature needs
  • Define and maintain KPI definitions across business domains (Sales, Marketing, Finance, Supply Chain, eCom) — the single source of truth the whole organization relies on
  • Drive data quality, documentation, and observability practices — a broken data contract is treated like a bug in production
  • Collaborate with Data Engineers on pipeline design and data availability, and with the Data Scientist on feature engineering and model readiness
  • Contribute to the semantic layer evolution roadmap as part of the SPINE program
2. AI & Agentic — where we are heading
  • Contribute to the Agentic AI POC on eCom and Marketing insights ("ChatGPT for Data") — help design what data needs to look like for an agent to reason on it Support the Profit Margin Agent use case: from data preparation and structuring, to integration
  • Help establish MLOps practices on Azure ML: model lifecycle management, monitoring, deployment standards — so the Data Scientist can ship with confidence
  • Evaluate AI tooling pragmatically — bring a critical, grounded view on what fits our stack and our maturity level
  • Document AI patterns and architectural decisions as we discover them, building shared knowledge for the team
3. Technical Vision & Team Contribution
  • Bring informed technical opinions: propose architectural decisions, evaluate tools, challenge choices with well-reasoned arguments — while staying pragmatic
  • Keep up with the field (models, frameworks, patterns) and bring back what is genuinely relevant to our context — signal, not hype
  • Mentor Analytics Engineers: share best practices, run code reviews, raise the bar on modeling standards
  • Contribute actively to PI Planning, sprint reviews, and architecture discussions — not just executing tickets, but shaping what we build
Experience
  • 5+ years in Analytics Engineering, Data Engineering, or a similar role with strong data modeling responsibility
  • Proven track record delivering production-grade dbt models and semantic layers in a complex data environment
  • Hands‑on experience with AI or ML tooling in a data context — not necessarily deep ML expertise, but genuine curiosity and practical engagement
  • Experience working in cross‑functional environments, collaborating with both technical and business stakeholders
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