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Company DescriptionBlend is a premier AI services provider, committed to co-creating meaningful impact for its clients through the power of data science, AI, technology, and people. With a mission to fuel bold visions, Blend tackles significant challenges by seamlessly aligning human expertise with artificial intelligence. The company is dedicated to unlocking value and fostering innovation for its clients by harnessing world-class people and data-driven strategy. We believe that the power of people and AI can have a meaningful impact on your world, creating more fulfilling work and projects for our people and clients. For more information, visit www.blend360.comJob DescriptionAs a Senior Data Scientist Intelligent Media Targeting, you will play a key role in designing and deploying advanced customer analytics and marketing science solutions that enable intelligent media planning and customer targeting. You will work on customer segmentation, Marketing Mix Modeling (MMM), causal measurement, marketing effectiveness, and AI-powered analytics to help global clients optimize media investments and drive measurable business outcomes.This role requires strong expertise in machine learning, statistical modeling, customer analytics, and marketing measurement, along with the ability to translate complex analytical findings into actionable business recommendations. You will collaborate closely with business stakeholders, data engineers, and cross-functional teams to deliver scalable, production-ready data science solutions.Key ResponsibilitiesDesign and develop advanced customer segmentation models using clustering techniques such as K-Means, GMM, DBSCAN, or similar algorithms.Build and deploy Marketing Mix Models (MMM) to measure marketing effectiveness and optimize media investments.Engineer customer and transaction-level features including RFM, spend trajectory, recency decay, and behavioral metrics.Develop statistical and machine learning models for customer targeting, campaign optimization, and marketing effectiveness measurement.Perform causal inference, experimentation, and A/B testing to measure incremental impact of marketing initiatives.Apply model explainability techniques such as SHAP to generate meaningful business insights and customer narratives.Develop reusable Python-based analytics frameworks and scalable machine learning workflows.Partner with business stakeholders to understand marketing objectives and translate them into analytical solutions.Present analytical findings and strategic recommendations to business and leadership teams.Collaborate with data engineering teams to build scalable data pipelines and production-ready analytics solutions.Contribute to AI-enabled analytics initiatives by leveraging Generative AI, LLMs, or AI-assisted workflows where applicable.Mentor junior team members and contribute to analytics best practices and reusable frameworks.QualificationsRequired SkillsData Science & Machine LearningStrong hands-on experience in Python development for production-grade analytics and machine learning.Extensive experience with pandas, NumPy, scikit-learn, and related data science libraries.Strong SQL skills including joins, aggregations, window functions, and large-scale data analysis.Solid understanding of statistics including regression, hypothesis testing, probability distributions, model validation, and experimentation.Experience developing production-ready machine learning solutions.Customer Segmentation & Marketing AnalyticsStrong experience building customer segmentation models using clustering algorithms such as K-Means, Gaussian Mixture Models (GMM), DBSCAN, or equivalent techniques.Experience performing cluster validation using techniques such as Silhouette Score or stability analysis.Experience engineering customer features including RFM, spend trajectory, recency decay, and behavioral analytics.Experience developing customer personas and translating analytical outputs into business strategies.Experience with campaign targeting, customer analytics, recommendation systems, or propensity modeling.Marketing ScienceHands-on experience with Marketing Mix Modeling (MMM), Marketing Effectiveness Measurement, or Multi-Touch Attribution (MTA).Experience building media optimization, response curve, and budget allocation models.Understanding of media carryover, saturation effects, adstock, elasticity, and promotional effectiveness.Experience with causal inference, Geo Experiments, incrementality testing, or A/B experimentation.AI & ExplainabilityExperience using SHAP, LIME, or other Explainable AI techniques.Exposure to Generative AI, LLMs, Prompt Engineering, or AI-assisted analytics workflows.Understanding of model governance, monitoring, and deployment best practices.QualificationsBachelor's or Master's degree in Computer Science, Statistics, Mathematics, Data Science, Engineering, Economics, or a related quantitative discipline.Senior Data Scientist: 58 years of relevant Compa
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