Edureka

Applied Machine Learning Without Coding

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Edureka

Applied Machine Learning Without Coding

Edureka

Instructor: Edureka

Included with Coursera Plus

Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

7 hours to complete
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

7 hours to complete
Flexible schedule
Learn at your own pace

What you'll learn

  • Explain fundamental machine learning concepts, mathematical foundations, and the role of no-code tools in building analytical workflows.

  • Apply Orange Data Mining to build regression and classification models using visual, no-code workflows.

  • Analyze model performance using appropriate evaluation metrics to compare, select, and improve machine learning models.

  • Evaluate and optimize machine learning solutions by tuning parameters and designing end-to-end predictive workflows for real-world data.

Details to know

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Recently updated!

March 2026

Assessments

14 assignments¹

AI Graded see disclaimer
Taught in English

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Build your subject-matter expertise

This course is part of the No-Code Data Science and Machine Learning Specialization
When you enroll in this course, you'll also be enrolled in this Specialization.
  • Learn new concepts from industry experts
  • Gain a foundational understanding of a subject or tool
  • Develop job-relevant skills with hands-on projects
  • Earn a shareable career certificate

There are 4 modules in this course

Build a strong foundation in no-code data science by learning how to use Orange for visual data mining while developing core machine learning and mathematical concepts. Explore the Orange interface, widgets and workflow design, then strengthen your understanding of linear algebra, probability and optimization fundamentals. Gain conceptual clarity on machine learning types, model evaluation strategies and common pitfalls like overfitting, preparing you for practical modeling workflows in later modules.

What's included

10 videos5 readings4 assignments

Develop practical regression modeling skills by progressing from linear regression fundamentals to advanced algorithms such as Support Vector Machines and Random Forests. Learn how to select features, build and compare regression models in Orange and evaluate performance using industry-standard metrics like RMSE, MAE and R². Strengthen your ability to optimize models through hyperparameter tuning and residual analysis to produce accurate, reliable predictions.

What's included

11 videos4 readings4 assignments

Master classification techniques by building, evaluating and tuning models for categorical prediction problems. Start with core classification concepts and algorithms such as logistic regression, decision trees, KNN and Naive Bayes, then advance to SVM and Random Forest classifiers. Learn to interpret confusion matrices, ROC curves and performance metrics while applying hyperparameter tuning to select the best-performing models for real-world classification tasks.

What's included

9 videos4 readings4 assignments

Consolidate your learning by revisiting the complete no-code data science workflow, from data exploration and mathematical foundations to regression and classification modeling. Reinforce key concepts, modeling decisions, and evaluation techniques while demonstrating your ability to build end-to-end machine learning solutions using Orange through a final assessment.

What's included

1 video1 reading2 assignments

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Instructor

Edureka
Edureka
153 Courses 142,619 learners

Offered by

Edureka

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¹ Some assignments in this course are AI-graded. For these assignments, your data will be used in accordance with Coursera's Privacy Notice.