Senior Machine Learning Engineer – AI/ML Solutions
mastercard
Job description
About the role
Mastercard’s Business & Market Insights (B&MI) group is seeking a Senior Engineer to lead the Operational Intelligence Program. The role focuses on designing, building, and delivering secure, scalable AI/ML solutions that drive data‑driven insights for financial and operational use cases.
Key responsibilities
- Lead design and development of AI and analytics solutions covering classical machine learning, time‑series forecasting, statistical modeling, deep learning, and emerging agent‑based architectures.
- Develop predictive and prescriptive models using supervised, unsupervised, and probabilistic approaches such as regression, tree‑based models, clustering, anomaly detection, Bayesian inference, and ensemble methods.
- Build and optimize forecasting frameworks with ARIMA/SARIMA, ETS, Prophet, VAR, state‑space models, LSTM/GRU, and hybrid ML pipelines.
- Integrate Generative AI and multi‑agent systems (LangGraph, CrewAI, AutoGen) with traditional ML to enable reasoning‑driven automation and intelligent decision support.
- Perform exploratory data analysis, feature engineering, hypothesis testing, experimental design, root‑cause analysis, and uncertainty quantification.
- Create reusable model components, evaluation workflows, hyperparameter tuning, drift detection, and benchmarking across classical ML and GenAI.
- Ensure model governance, explainability, and responsible AI practices.
Required profile
- Senior‑level technologist with strong experience in AI/ML solution delivery.
- Proven ability to manage stakeholders and drive engineering best practices.
- Commitment to continuous learning and fostering technical excellence within a team.
Required skills
- Classical machine learning
- Time‑series forecasting (ARIMA, SARIMA, ETS, Prophet, VAR, state‑space models, LSTM, GRU)
- Statistical modeling and deep learning
- Agent‑based architectures, Generative AI, LangGraph, CrewAI, AutoGen
- Supervised, unsupervised, and probabilistic modeling
- Regression, tree‑based models, clustering, anomaly detection, Bayesian inference, ensemble methods
- Feature engineering, hypothesis testing, experimental design, root‑cause analysis, uncertainty quantification
- Model governance, explainable AI, responsible AI practices
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Published 3 weeks ago
Expires 1 month from now
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