
Marketing Analyst Course
The Marketing Analyst Course gives you the technical skills and strategic thinking to turn raw marketing data into decisions that move budgets and drive growth. From SQL queries and Python scripts to attribution models and customer lifetime value frameworks, every module is built around real analyst work. If you're ready to become the person in the room who actually knows what the numbers mean, this is your course.
What you will learn:
You'll build a complete marketing analytics skill set, starting with core KPIs and data collection fundamentals, then advancing through statistical analysis, digital channel measurement, and customer lifetime value modeling. You'll learn how to design A/B tests, apply attribution models, and use SQL and Python to extract and automate insights from real datasets. The course also covers data storytelling, dashboard design, and how to present findings to executive stakeholders. By the end, you'll have the tools and frameworks to make data-driven recommendations that directly influence marketing strategy and budget decisions.
How you study in practice Marketing Analyst Course
How you practise Marketing Analyst Course
For companies looking to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course Content
8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Marketing Analytics
Foundations of Marketing Analytics
Lesson 1 • Analytical Thinking for Marketers
Trains structured problem decomposition and hypothesis-driven thinking. Grounds all future analyses in a repeatable reasoning framework.
Lesson 2 • Marketing Data Ecosystem Overview
Maps the landscape of data sources marketers rely on, from CRM to ad platforms. Connects data origins to analytical decisions made throughout the course.
Lesson 3 • Core Marketing Metrics Defined
Introduces essential KPIs such as CAC, LTV, ROAS, and conversion rate. Provides a shared vocabulary used in every subsequent chapter.
Lesson 4 • The Marketing Analyst Role
Defines the analyst's responsibilities within marketing teams and business hierarchies. Establishes context for all subsequent technical and strategic skills.
Chapter 2HideHide detailsSee detailsData Collection and Management
Data Collection and Management
Lesson 1 • Building and Managing a Data Pipeline
Introduces ETL concepts and basic pipeline architecture for marketing data flows. Prepares students to work with data engineers and maintain data freshness.
Lesson 2 • Data Cleaning and Preparation
Teaches deduplication, outlier handling, and missing-value treatment for marketing datasets. Ensures data integrity before any metric calculation or modeling.
Lesson 3 • Data Privacy and Compliance Principles
Reviews consent frameworks, data minimization, and user rights relevant to marketing data. Ensures analysts operate within ethical and regulatory boundaries.
Lesson 4 • Tracking and Tagging Fundamentals
Explains how pixels, tags, and event tracking capture user behavior across channels. Directly enables accurate data collection for all downstream analyses.
Lesson 5 • Survey and Primary Data Collection
Covers survey design, sampling methods, and primary research execution. Complements behavioral data with attitudinal and self-reported insights.
Chapter 3HideHide detailsSee detailsDescriptive Analytics and Reporting
Descriptive Analytics and Reporting
Lesson 1 • Building Marketing Dashboards
Guides the design of live dashboards that track KPIs across channels. Connects metric definitions from Chapter 1 to actionable visual displays.
Lesson 2 • Data Visualization Principles
Teaches chart selection, color theory, and layout for marketing audiences. Ensures visuals communicate insights rather than obscure them.
Lesson 3 • Exploratory Data Analysis Techniques
Applies summary statistics and distribution analysis to marketing datasets. Builds the habit of understanding data shape before drawing conclusions.
Lesson 4 • Reporting for Stakeholders
Structures recurring and ad hoc reports for executives, channel managers, and clients. Translates raw metrics into business narratives with clear recommendations.
Chapter 4HideHide detailsSee detailsDigital Channel Analytics
Digital Channel Analytics
Lesson 1 • Paid Search and Display Analytics
Covers Quality Score, impression share, CPC, and ROAS for paid media campaigns. Enables data-driven budget allocation and bid strategy recommendations.
Lesson 2 • Web Analytics Deep Dive
Examines sessions, bounce rate, funnel drop-off, and on-site behavior metrics. Provides the analytical foundation for website optimization decisions.
Lesson 3 • Email and CRM Analytics
Analyzes open rate, click-to-open rate, deliverability, and list health for email programs. Connects email performance to revenue and customer lifecycle stages.
Lesson 4 • Social Media Analytics
Measures reach, engagement rate, share of voice, and paid social efficiency. Links social metrics to brand and conversion outcomes.
Lesson 5 • SEO Performance Analysis
Tracks organic rankings, crawl health, backlink profiles, and search visibility trends. Quantifies SEO impact on traffic and revenue over time.
Chapter 5HideHide detailsSee detailsStatistical Analysis for Marketers
Statistical Analysis for Marketers
Lesson 1 • Hypothesis Testing Essentials
Teaches t-tests, chi-square tests, and z-tests for comparing marketing groups. Enables statistically sound conclusions from campaign and segment comparisons.
Lesson 2 • Segmentation with Clustering Methods
Uses k-means and hierarchical clustering to identify distinct customer segments. Translates statistical groupings into actionable marketing personas.
Lesson 3 • Regression Analysis in Marketing
Applies simple and multiple linear regression to forecast metrics and identify drivers. Connects statistical modeling to actionable marketing recommendations.
Lesson 4 • A/B and Multivariate Testing
Designs and analyzes controlled experiments for ads, landing pages, and emails. Applies hypothesis testing skills to real marketing optimization scenarios.
Lesson 5 • Probability and Distributions Review
Covers normal, binomial, and Poisson distributions relevant to marketing data. Provides the statistical foundation for all hypothesis testing in this chapter.
Chapter 6HideHide detailsSee detailsAttribution and Campaign Measurement
Attribution and Campaign Measurement
Lesson 1 • Unified Measurement Strategy
Combines attribution, incrementality, and MMM into a coherent measurement framework. Prepares students to advise on measurement architecture for complex organizations.
Lesson 2 • Marketing Mix Modeling Basics
Introduces regression-based MMM to quantify channel contribution at aggregate level. Complements digital attribution with an offline and long-term view.
Lesson 3 • Attribution Model Fundamentals
Compares last-click, first-click, linear, time-decay, and position-based models. Establishes the trade-offs each model introduces for budget decisions.
Lesson 4 • Incrementality and Lift Testing
Teaches holdout tests and geo-lift experiments to measure true incremental impact. Separates organic conversions from marketing-driven ones.
Lesson 5 • Data-Driven Attribution Methods
Introduces algorithmic attribution using Shapley values and Markov chains. Advances beyond rule-based models to statistically grounded credit assignment.
Chapter 7HideHide detailsSee detailsCustomer Analytics and Lifetime Value
Customer Analytics and Lifetime Value
Lesson 1 • RFM Analysis and Customer Scoring
Applies recency, frequency, and monetary scoring to prioritize customer segments. Provides a practical, low-complexity framework for CRM-driven marketing.
Lesson 2 • Churn Prediction and Prevention
Identifies at-risk customers using behavioral signals and predictive scoring models. Connects churn reduction to LTV improvement and retention ROI.
Lesson 3 • Cohort Analysis Techniques
Groups customers by acquisition period to track retention and revenue over time. Reveals product-market fit signals and campaign quality differences.
Lesson 4 • Customer Lifetime Value Modeling
Builds historical and predictive LTV models using purchase frequency and margin data. Enables ROI-based decisions on acquisition spend and retention investment.
Lesson 5 • Customer Journey Mapping with Data
Uses behavioral data to reconstruct and analyze the end-to-end customer journey. Identifies high-impact touchpoints for optimization across the funnel.
Chapter 8HideHide detailsSee detailsStrategic Analytics and Business Impact
Strategic Analytics and Business Impact
Lesson 1 • Building the Analytics Business Case
Structures ROI arguments for analytics investments, tools, and team expansion. Equips analysts to advocate for data-driven culture within organizations.
Lesson 2 • Competitive and Market Analysis
Synthesizes share-of-voice, benchmarking, and market sizing data for strategic context. Positions the brand's performance relative to market dynamics.
Lesson 3 • Forecasting Marketing Performance
Applies time-series methods and regression forecasting to project future KPIs. Enables proactive planning and early identification of performance risks.
Lesson 4 • Capstone: End-to-End Analytics Project
Integrates all prior skills into a full analytics engagement from data to recommendation. Simulates real-world analyst deliverables for portfolio and interview readiness.
Lesson 5 • Budget Optimization with Analytics
Uses channel ROI, marginal returns, and scenario modeling to allocate marketing budgets. Connects analytical rigor to financial planning and executive decision-making.
Your valid completion certificate
This course is for you:
Marketing coordinator: ready to move beyond gut-feel campaign decisions.
Digital advertising specialist: wanting to validate spend with real statistical evidence.
Business graduate: entering the workforce and targeting a data-focused marketing role.
E-commerce manager: needing to connect channel performance data to revenue outcomes.
Career changer from sales: bringing customer intuition and seeking analytical credentials.
Freelance marketing consultant: looking to offer clients measurable, data-backed strategy recommendations.
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