Senior Data Scientist – Marketing Mix Optimization (mmo Enhancements)
Blend
Job Description & Responsibilities
Blend is seeking Senior Data Scientists to join our Marketing Mix Optimization (MMO) Enhancements team, building next-generation Bayesian Marketing Mix Models that help global clients optimize media investments and maximize business outcomes. This role is ideal for professionals who have deep expertise in Bayesian statistics, causal inference, optimization, and advanced econometric modeling.
As a Senior Data Scientist, you will develop production-grade Bayesian models, design optimization frameworks, evaluate marketing effectiveness, and translate complex statistical methodologies into actionable business recommendations. You will work closely with data scientists, engineers, and business stakeholders to build scalable, interpretable, and production-ready solutions.
What You'll D o Design and build Bayesian Marketing Mix Models (MMM) from the ground up using Py MC or Stan . Develop hierarchical Bayesian models capable of handling sparse and multi-level marketing data . Implement chained and multi-stage modeling architectures with proper uncertainty propagation using Monte Carlo simulations . Build constrained optimization models for media budget allocation considering channel constraints, business rules, and ROI objectives . Develop multi-objective optimization frameworks balancing multiple marketing and business KPIs . Design and analyze geo experiments, causal impact studies, Difference-in-Differences (Di D), Synthetic Control models, and regression discontinuity analyses . Develop advanced adstock and saturation transformations including geometric, Weibull, and Hill functions .
Perform
Bayesian model diagnostics using Arvi Z including convergence analysis, posterior validation, R-hat, ESS, and divergence analysis . Build reproducible, production-quality Python code following software engineering best practices . Work extensively with large-scale datasets using SQL, Python, and statistical modeling techniques . Document methodologies, modeling assumptions, validation approaches, and technical decisions for business stakeholders . Collaborate with engineering teams to operationalize statistical models into production environments . Independently own workstreams while proactively identifying risks, blockers, and improvement opportunities .
Required Qualificatio ns Master's or Ph D in Statistics, Mathematics, Economics, Computer Science, Data Science, Operations Research, or a related quantitative disciplin e.5+ years of experience building advanced statistical or econometric models in production environment s. Strong expertise in Bayesian statistics and probabilistic modelin g. Hands-on experience developing Bayesian models from scratch using Py MC and/or Sta n. Deep understanding of hierarchical Bayesian modeling and partial pooling technique s.
Experience implementing multi-stage probabilistic models with uncertainty propagatio n. Strong background in causal inference methodologies including Difference-in-Differences, Synthetic Control, geo experiments, and regression discontinuit y. Expertise in nonlinear optimization using Sci Py Optimize, CVXPY, or similar optimization framework s.
Strong
Python programming skills with production-quality, modular, and reproducible cod e. Advanced SQL skills including joins, window functions, CTEs, and large-scale aggregation s. Strong understanding of applied statistics including regression, hypothesis testing, probability distributions, and model evaluatio n.
Experience with Git-based version control and collaborative software developmen t. Excellent written communication skills with experience documenting methodologies and technical assumption s. Ability to work independently with minimal supervision in a fast-paced consulting environmen t.
Preferred Qualificati ons Experience with Bayesian causal inference frameworks such as Causal Impa ct. Exposure to MLflow or similar experiment tracking platfor ms. Experience with Num Pyro or Py ro. Experience designing or analyzing geo lift experiments in marketing or media analyti cs. Knowledge of modern media measurement frameworks and marketing effectiveness analys is. Experience working in cloud-based analytics environments (Azure, AWS, or GC P).
Technical Sk ills Py thonpa ndas N um Pyscikit-l ear n SQL Py MC Stan A rvi ZBayesian Statis tics Hierarchical Bayesian Mode ling Marketing Mix Modeling ( MMM)Bayesian Regres sion Causal Infer ence Difference-in-Differences ( Di D)Synthetic Con trol Regression Discontin uity Geo Lift Experim ents Adstock Mode ling Saturation Cu rves Hill Funct ions Weibull Distribu tion Change Point Detec tion Monte Carlo Simula tion Sci Py Opti mize C VXPYMulti-objective Optimiza tion Experiment De sig n Git MLflow (Prefer red)Num Pyro (Prefer red)Pyro (Prefer red)
About Blend
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Posted on:
14 Sept 2026
About Blend
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