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Kodestree

Applied Machine Learning Certification Training

30 Lessons
|
40 hours

kodestree’s Applied Machine Learning training teaches you how to build, train, and deploy real-world ML models using Python. From regression and classification to deep learning and model deployment, this hands-on program prepares working professionals to solve practical business problems with confidence and industry-relevant skills.

Applied Machine Learning Certification Training
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About Course

This Applied Machine Learning course by kodestree moves beyond pure theory to focus on practical implementation. In this Applied Machine Learning online course program, you will work with real datasets, popular Python libraries, and end-to-end project pipelines covering supervised learning, unsupervised learning, feature engineering, model evaluation, and deployment, building skills that map directly to today’s data-driven job roles.

Prerequisites

A basic understanding of Python programming, high-school-level statistics, and elementary linear algebra is recommended before enrolling. Prior exposure to data analysis tools such as Excel or SQL is helpful but not mandatory, as kodestree covers foundational concepts during the early sessions for learners coming from a non-technical background.

Course Objectives

  • Build a strong foundation in machine learning concepts, terminology, and workflow
  • Apply supervised and unsupervised learning algorithms to real business datasets
  • Learn data preprocessing, feature engineering, and feature selection techniques
  • Understand model evaluation metrics and techniques to avoid overfitting
  • Gain hands-on exposure to deep learning fundamentals using neural networks
  • Develop the ability to choose, tune, and deploy the right ML model for a use case

What You Will Learn

In this Applied Machine Learning online training program, you will learn the following skills that will help you to build a strong skill set.

  • Python for machine learning, including NumPy, Pandas, and Matplotlib
  • Data cleaning, transformation, and exploratory data analysis (EDA)
  • Regression techniques: linear, polynomial, and regularized models
  • Classification algorithms: logistic regression, decision trees, random forest, SVM
  • Unsupervised learning: K-means clustering, hierarchical clustering, PCA
  • Model evaluation metrics: accuracy, precision, recall, F1-score, ROC-AUC
  • Ensemble learning techniques such as bagging, boosting, and stacking
  • Introduction to neural networks and deep learning with TensorFlow/Keras
  • Hyperparameter tuning, cross-validation, and model optimization
  • Deploying machine learning models for real-world business applications

Who Is This Course For?

This course is designed for professionals and learners who want to apply machine learning to real business problems.

  • Data analysts and BI professionals moving into machine learning roles
  • Software developers and engineers exploring AI/ML career paths
  • Statisticians and researchers wanting hands-on ML implementation skills
  • Graduates and final-year students preparing for data science careers
  • Product managers and business analysts who work closely with ML teams
  • IT professionals looking to upskill in artificial intelligence and ML

Tools and Technologies Covered

In this program, you will work with the following tools and frameworks.

  • Python
  • NumPy and Pandas
  • Matplotlib and Seaborn
  • Scikit-learn
  • TensorFlow and Keras
  • Jupyter Notebook / Google Colab
  • Git and GitHub (version control basics)

Course Curriculum

Course Content

Lesson 1 – Introduction to Machine Learning

  • What is Machine Learning and how it differs from traditional programming
  • Types of ML: supervised, unsupervised, and reinforcement learning
  • The end-to-end machine learning workflow

Lesson 2 – Python for Machine Learning

Lesson 3 – Data Preprocessing and EDA

Lesson 4 – Supervised Learning – Regression

Lesson 5 – Supervised Learning – Classification

Lesson 6 – Unsupervised Learning

Lesson 7 – Ensemble Learning

Lesson 8 – Introduction to Deep Learning

Lesson 9 – Model Tuning and Deployment

Lesson 10 – Capstone Project

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Self Paced Learning
₹47,940.00
✓ Refund Policy
  • Duration: 40 hrs
  • 30 Lessons & Practical Labs
  • Lifetime Full Access & Free Upgrades
  • Downloadable Study Materials & Code Labs
  • Recognized Certification of Completion
  • 24x7 Online Support & Learner Forum
One to One Training
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  • 100% Customized Delivery & Curriculum
  • Flexible Schedule as per Learner Convenience
  • Top Tier Industry-Experienced Instructors
  • Tailored Hands-On Project Mentoring
  • Dedicated Interview & Career Guidance
  • 24x7 Dedicated Priority Support

Placement Partners

Hettich
Bechtel
Emirates
Mitsubishi
Indian Navy
Tech Mahindra
AU Small Finance Bank
Capgemini
United Nations
Yash Technologies

Want to know Today's Offer

Applied Machine Learning Certification Training Certification Exam

Upon completing the Applied Machine Learning Certification Training, you will receive a globally recognized certification that validates your expertise in data science, machine learning, and AI model development. This certification is a testament to your practical knowledge, hands-on skills, and professional readiness.

The AI & Data Science certification exam assesses your ability to apply real-world concepts, tools, and techniques learned during the course. Certified professionals are in high demand across industries, opening doors to exciting career opportunities and higher salary potential.

Our certification is recognized by top employers and organizations worldwide. Whether you are looking to advance your current career, switch to a new role, or demonstrate your expertise to clients, this certification gives you the competitive edge you need in today’s fast-paced technology landscape.

Read more
Applied Machine Learning Certification Training

Frequently Asked Questions

Basic familiarity with Python is helpful but not mandatory. kodestree covers Python fundamentals early in the course so learners from non-technical backgrounds can catch up comfortably.

Yes. The course includes multiple hands-on assignments and a capstone project based on real-world datasets, so you apply concepts as you learn them rather than just studying theory.

Yes, the course is designed with flexible weekday and weekend live batches, along with lifetime access to recordings, making it convenient for full-time professionals to learn at their own pace.

You will receive an kodestree course completion certificate that validates your applied machine learning skills and can be added to your resume or LinkedIn profile.

Yes, the course includes an introduction to neural networks and deep learning using TensorFlow and Keras, in addition to core machine learning algorithms.

kodestree offers placement support including resume building and interview preparation guidance to help learners transition into ML-related roles.

The course structure prioritizes practical implementation, real datasets, and end-to-end projects over heavy mathematical derivations, helping you become job-ready faster.

Contact Us Worldwide

Call:
+91 7204614489

WhatsApp:
+91 7204614489

Email:
admissions@kodestree.com

LEARNER SUCCESS

What Learners Say

Real feedback from professionals who transformed their careers with our training

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“

The trainers explained concepts through real-world attack scenarios, which I was able to apply on the job right after the course. Structured curriculum and hands-on labs were the best part.

“

After the CSM training, I can confidently facilitate Sprint ceremonies. The trainer's practical approach and real project examples were extremely helpful.

“

Agile concepts were explained clearly, especially backlog management and team facilitation. A bit more time would have made it even better, but overall a solid course.

“

Even as a beginner, I never felt lost — the step-by-step labs and doubt-clearing sessions made switching careers so much easier.

“

This training gave me more than just a certification — it gave me a Scrum Master mindset. The modules on servant leadership and conflict resolution were the most valuable.

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