Data Science with SQL Server and R Training in Netherlands

  • Learn via: Classroom
  • Duration: 4 Days
  • Level: Intermediate
  • Price: From €3,692+VAT
We can host this training at your preferred location. Contact us!

Introducing the language, statistics, data mining, and machine learning with R, and using data science in SQL Server and Microsoft BI stack.

R is the most popular environment and language for statistical analyses, data mining, and machine learning. Managed and scalable version of R runs in SQL Server, Power BI, and Azure ML. The main topic of the course is the R language. However, the course also shows how to use the languages and tools available in MS BI suite for data science applications, including Python, T-SQL, Power BI, Azure ML, and Excel. The labs focus on R; the demos also show the code in other languages.

Why This Course?

  • Compare R vs Python.
  • Get familiar with unsupervised learning methods.
  • Execute matrix operations.
  • Visualize associations between variables.
  • Prepare Data for analytical tasks.
  • Get familiar with supervised learning methods

Attendees should have basic understanding of data analysis and basic familiarity with SQL Server tools

Attendees of this course learn to program with R from the scratch. Basic R code is introduced using the free R engine and RStudio IDE. A lifecycle of a data science project is explained in details. The attendees learn how to perform the data overview and do the most tedious task in a project, the data preparation task. After data overview and preparation, the analytical part begins with intermediate statistics in order to analyze associations between pairs of variables. Then the course introduces more advanced methods for researching linear dependencies.

Finally, the attendees also learn how to use the R code in SQL Server, Azure ML, and Power BI through labs, and how to use Python for inside all of the tools mentioned through demos.

Module 1. Introducing data science and R

  • What are statistics, data mining, machine learning…
  • Data science projects and their lifetime
  • Introducing R
  • R tools
  • R data structures
  • Lab 1

Module 2. Introducing Python

  • Basic syntax and objects
  • Data manipulation with NumPy and Pandas
  • Visualizations with matplotlib and seaborn libraries
  • Data science with Scikit-Learn
  • Lab 2: Discussion – R vs Python

Module 3. Data overview

  • Datasets, cases and variables
  • Types of variables
  • Introductory statistics for discrete variables
  • Descriptive statistics for continuous variables
  • Basic graphs
  • Sampling, confidence level, confidence interval
  • Lab 2

Module 4. Data preparation

  • Derived variables
  • Missing values and outliers
  • Smoothing and normalization
  • Time series
  • Training and test sets
  • Lab 3

Module 5. Associations between two variables and visualizations of associations

  • Covariance and correlation
  • Contingency tables and chi-squared test
  • T-test and analysis of variance
  • Bayesian inference
  • Linear models
  • Lab 4

Module 6. Feature selection and matrix operations

  • Feature selection in linear modelsExecute
  • Basic matrix algebra
  • Principal component analysis
  • Exploratory factor analysis
  • Lab 5

Module 7. Unsupervised learning

  • Hierarchical clustering
  • K-means clustering
  • Association rules
  • Lab 6

Module 8. Supervised learning

  • Neural Networks
  • Logistic Regression
  • Decision and regression trees
  • Random forests
  • Gradient boosting trees
  • K-nearest neighbors
  • Lab 7

Module 9. Modern topics

  • Support vector machines
  • Time series
  • Text mining
  • Deep learning
  • Reinforcement learning
  • Lab 8

Module 10. R in SQL Server and MS BI

  • ML Services (In-Database) structure
  • Executing external scripts in SQL Server
  • Storing a model and performing native predictions
  • R in Azure ML and Power BI
  • Lab 9


Contact us for more detail about our trainings and for all other enquiries!

Upcoming Trainings

Join our public courses in our Netherlands facilities. Private class trainings will be organized at the location of your preference, according to your schedule.

07 januari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
€3,692 +VAT
Book Now
17 januari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
07 januari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
€3,692 +VAT
Book Now
04 februari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
08 februari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
17 januari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
13 februari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
26 februari 2025 (4 Days)
Amsterdam, Rotterdam
Classroom / Virtual Classroom
Data Science with SQL Server and R Training Course in Netherlands

The Netherlands, which is also informally known as Holland, is a country located in Northwestern Europe with overseas territories in the Caribbean. The four largest cities are Amsterdam, Rotterdam, The Hague and Utrecht. Amsterdam is the country's most populous city and the nominal capital, while The Hague holds the seat of the States General, Cabinet and Supreme Court. Rotterdam is the second largest city and has the largest port in Europe. The importance of the Netherlands for Europe is so huge that it cannot be ignored. The country is a founding member of the European Union, Eurozone, G10, NATO, OECD, and WTO.

The tourist attractions of the Netherlands are windmills, canals, and tulips. Canals are an important part of Amsterdam's cityscape and Keukenhof, the Garden of Europe, is the largest public garden in the world. The National Museum Rijksmuseum and the Anne Frank House are must-see places in the Netherlands.

Enhance your IT skills with our comprehensive array of courses, spanning programming, software development, data science, and project management. Benefit from the convenience of choosing your preferred location in Netherlands as our experienced instructors deliver interactive training and real-world insights.
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