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Techsa

Senior ML Engineer

Posted 21 days ago
Worldwide
5-10 years experience
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AI Summary

The Senior ML Engineer will own and deliver predictive customer scoring solutions, including churn and propensity models, from requirements through to production monitoring. They will collaborate with cross-functional teams to build scalable, reliable, and maintainable machine learning capabilities within the data platform.

This is a remote position.

We are looking for a Senior ML Engineer to join our team and take ownership of key areas within our technology and data platform. Owns the predictive customer scores that ship with the product: churn, propensity, lifetime value, spend intent, and response scoring, from training through to monitoring.

Key Responsibilities

• Own and deliver solutions within the scope of the role, from requirements and technical/design decisions through implementation and continuous improvement.
• Work closely with engineering, product, data, design, and business stakeholders to translate requirements into practical, scalable solutions.
• Apply strong engineering and/or domain expertise to build reliable, maintainable, and production-ready capabilities.
• Contribute to architecture, standards, documentation, quality, and technical decision-making appropriate to the role.
• Identify performance, scalability, data quality, usability, reliability, or operational risks and address them proactively.
• Collaborate across teams to ensure solutions integrate effectively with existing systems and platform components.

Requirements

• Experience: 5+ years of relevant professional experience.
• Strong hands-on experience with: Applied machine learning, tabular predictive modelling, feature engineering, gradient boosting, model evaluation and calibration, Python, Spark, MLOps.
• Applied machine learning with models running in production, not research or proof of concept.
• Deep hands on with tabular predictive modelling on customer data.
• Has built churn or propensity models in telco, banking, or retail.
• Training, deployment, and retraining pipelines in a self managed environment.
• MLOps practice: model registry, versioning, retraining, monitoring, and drift detection.
• Comfortable working inside a data platform rather than a notebook.

Domain Requirement:

• Telco or Banking is a must

Preferred Qualifications
• Uplift or causal modelling for incremental targeting.
• Feature store design.
• Working with commercial stakeholders on what a prediction is used for.


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