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Information importante
Type de contrat:
Freelance
Salaire / Taux journalier :
Salaire selon profil
Localisation :
Paris, France
Date de démarrage :
Urgent
Mode de travail :
Sur site
Publié le :
10 avril 2026
Le besoin
The Customer Relationship Data Team is dedicated to delivering actionable insights to a broad range of stakeholders—including Strategic Leads, Digital Product Managers, Country Operations, and Unified Marketing teams—to drive data-informed decision-making.
We design and deploy innovative technical solutions for our internal users, prioritizing operational excellence and daily user satisfaction. In the context of a new external consultancy opening, we are seeking an Analytics Engineer to join our team in Paris.
Profil recherché
Your future contribution is two-fold :
360 data processing and readiness for MMM purposes
Help the Retail Marketing team and their external MMM (Marketing Mix Modeling) vendor access data regarding levers that have an impact on global sales.
Meet with the data owners, understand their data stored in the datalake and manipulate it according to their standards.
Process the data and make it accessible so the MMM vendor can use it for their MMM algorithm.
Receive the MMM vendor’s data model (input and output of their MMM algorithm) and store it in the insight layer of our datalake.
Customer Relationship Insight excellency
Enable intelligent analytics by building robust, reliable and relevant datasets.
Build and model the semantic layer of the business domain (CRM & Customer Relationship) in collaboration with the BI Engineer, PM Data and the governance manager.
Automate and industrialize the data transformation pipelines used for dashboards, AI models and data analysis.
Contribute to the development of our technical stack strategy with tech leads.
Apply best practices, guarantee the quality of exposed data and the performance of flows.
Maintain and rethink existing datasets and pipelines to serve a wider variety of use cases.
Contribute actively to our community of analytics engineers and data engineers.
Technical environment
Data-platform: Amazon Web Services, Databricks, S3
Code Programming: SQL, Python, Scala
Data orchestration: Airflow
Data modeling: dbt
Software versioning & Delivery: Git, Github, Make
What you'll need to succeed
You have at least 5 years' experience as an Analytics Engineer or Data Engineer.
You have significant experience on one of the main AWS / GCP / Azure clouds, and know how to use components (e.g. Databricks) and schedulers (Airflow, etc.) and optimize their performance.
You are fluent in the following languages: SQL and/or Python.
You've mastered the implementation of data transformation pipelines with dbt and you have a strong understanding of optimization possibilities, which is essential given the high volume of data involved.
You have experience with an orchestrator (Airflow, Luigi, Prefect, Dagster…) in order to implement the reporting pipelines within the team.
You have experience in dimensional modeling (Kimball, Data Vault, OBT).
Your peers recognize you for your strong technical aptitude.
You're comfortable with development tools: Git, Github, CI/CD, VSCode/Pycharm, Terminal.
You have foundations in CI/CD (Github Actions) with core concepts (testing, publishing and deploying artifacts) applied to the AE context.
You understand the data lifecycle and are comfortable with the concepts of data lineage, data governance and documentation.
It would be expected that you conduct gap analysis (table migrations, data models comparison) with rigor and accuracy.
You have a good level of English, enabling you to communicate both orally and in writing with our customers and partners (across 60 countries). This will be key for the international MMM project.
You enjoy working in an agile, collaborative environment (Scrum, etc.).
You have a strong sense of service.
You are particularly sensitive to the impact of physical activity and wellness on your leadership style and team life!
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