Posted on: 08/11/2025
Description :
Job Summary :
- Lead customer analytics and personalization initiatives using Azure AI services and large-scale customer data platforms.
Key Responsibilities :
- Design and deploy machine learning models using Azure Machine Learning for customer segmentation, churn prediction, lifetime value estimation, and recommendation systems.
- Analyze historical customer data to uncover behavioral patterns and actionable insights.
- Build and optimize recommendation engines using collaborative, content-based, and hybrid approaches.
- Develop and evaluate targeted marketing campaigns using predictive analytics and personalization strategies.
- Operationalize ML workflows using Azure MLOps (CI/CD, model versioning, monitoring, retraining).
- Collaborate with data engineering to build scalable data pipelines using Azure Data Factory and Azure Synapse Analytics.
- Integrate models with real-time systems using Azure Functions, Event Grid, and API Management.
- Present insights and model outcomes to stakeholders through dashboards and storytelling using Power BI.
Required Skills / Must-Have :
- Technical Skills : Python, SQL, scikit-learn, XGBoost, TensorFlow, PyTorch.
- Azure Services : Azure Machine Learning, Azure Synapse Analytics, Azure Data Factory, Azure Cognitive Services, Azure Functions & Logic Apps, Azure.
- Experience : 5+ years in data science with focus on customer analytics and personalization.
- Platforms : Customer Data Platforms (Adobe Experience Platform, Salesforce CDP, Segment).
- MLOps Tools : MLflow, Azure ML Pipelines, DVC.
- Data Warehousing : Snowflake or equivalent.
- Statistical Methods : A/B testing, causal inference, statistical modeling.
Nice-to-Have / Preferred Skills :
- Industry Experience : Airline, travel, or retail industry.
- Architecture : Real-time personalization and event-driven architectures using Azure Event Hubs or Kafka.
- Deployment : FastAPI or Flask integrated with Azure API Management.
Education & Qualifications :
Primary Education :
- Bachelors or Masters degree in Computer Science, Statistics, Mathematics, or related field.
Secondary / Acceptable Alternatives Education :
Preferred :
- Bachelors in Engineering or equivalent with relevant experience in customer analytics.
Secondary :
- Masters in Data Science or AI.
Certifications/Licenses :
- Azure AI Engineer Associate (preferred).
- Azure Data Scientist Associate (preferred).
- MLflow or DVC certification (preferred).
Skills Grouping & Synonyms :
- Customer Analytics : Customer segmentation / churn prediction / LTV modeling.
- Recommendation Systems : Collaborative filtering / content-based / hybrid.
- Azure AI : Azure ML / Synapse / Data Factory / Cognitive Services.
- MLOps : CI/CD / model monitoring / retraining / ML pipelines.
- Real-time Systems : Azure Functions / Event Grid / API Management.
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