Course Details
Machine Learning and Data Analytics is a practical, business-focused program designed to help professionals transform raw data into actionable insights and intelligent predictions. Participants will learn how to collect, prepare, analyze, visualize, and model data using modern analytics techniques and machine learning algorithms. The course combines statistical thinking, data-driven decision-making, predictive modeling, and real-world case studies to enable organizations to improve performance, reduce risk, and uncover new opportunities.
| DATE | VENUE | FEE |
| 01 - 05 Feb 2027 | London, UK | $ 4500 |
| 27 Sep - 01 Oct 2027 | London, UK | $ 4500 |
This course is appropriate for a wide range of professionals but not limited to:
- Data Analysts
- Business Analysts
- Data Scientists
- IT Managers
- Business Intelligence Professionals
- Digital Transformation Managers
- Expert-led sessions with dynamic visual aids
- Comprehensive course manual to support practical application and reinforcement
- Interactive discussions addressing participants’ real-world projects and challenges
- Insightful case studies and proven best practices to enhance learning
By the end of this course, participants should be able to:
- Understand the fundamentals of data analytics and machine learning.
- Collect, clean, and prepare data for analysis and modeling.
- Apply statistical techniques to identify trends and patterns.
- Build and evaluate predictive machine learning models.
- Create impactful dashboards and visualizations for decision-makers.
- Implement analytics-driven solutions to solve business challenges.
DAY 1
Foundations of Data Analytics and Machine Learning
- Introduction to data-driven organizations
- Data analytics lifecycle
- Types of data and data sources
- Data quality and governance fundamentals
- Introduction to machine learning concepts
- Analytics and AI use cases across industries
DAY 2
Data Preparation and Exploratory Analysis
- Data collection methods
- Data cleansing and preprocessing
- Handling missing and inconsistent data
- Exploratory Data Analysis (EDA)
- Statistical summaries and data profiling
- Identifying trends, anomalies, and correlations
DAY 3
Machine Learning Essentials
- Supervised vs. unsupervised learning
- Classification algorithms
- Regression techniques
- Clustering and segmentation methods
- Feature engineering concepts
- Model training and validation
DAY 4
Predictive Analytics and Model Optimization
- Performance measurement metrics
- Model evaluation techniques
- Improving model accuracy
- Predictive analytics applications
- Forecasting and trend prediction
- Managing bias and overfitting
DAY 5
Data Visualization and Business Applications
- Data storytelling techniques
- Dashboard design principles
- Visualization best practices
- Communicating analytical findings
- Deploying analytics solutions in organizations
- Capstone case study and action planning
Course Code
AI-118
Start date
2027-09-27
End date
2027-10-01
Duration
5 days
Fees
$ 4500
Category
Artificial Intelligence
City
London, UK
Language
English
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