Course information

Machine Learning with Python Training Course Outline

Module 1: Introduction to Machine Learning

  • What is Machine Learning?
  • Python for Machine Learning
  • AI vs Machine Learning
  • Classification of Machine Learning
  • Supervised vs Unsupervised Learning
  • Reinforcement Learning
  • Datasets for ML
  • Popular Sources of ML Datasets
  • Kaggle Datasets
  • UCI Machine Learning Repository
  • Datasets via AWS
  • Google’s Datasets Search Engine
  • Microsoft Datasets
  • Computer Vision Datasets
  • Scikit-learn Datasets
  • Application of Machine Learning
  • Virtual Process Assistance
  • Email Spam and Malware Filtering
  • Traffic Prediction
  • Image Recognition
  • Speech Recognition
  • Product Recommendation
  • Self-Driving Car
  • Detection Online Frauds
  • Python libraries for Machine Learning
  • Numpy
  • Pandas
  • Matplotib
  • Scikit-learn
  • Scipy
  • Tensorflow
  • Pytorch
  • Keras

Module 2: Regression

  • Introduction to Regression
  • Why do we use Regression Analysis?
  • Regression Analysis-Related Terminologies
  • Types of Regression
  • Linear Regression
  • Linear Regression Formula
  • Types of Linear Regression
  • Linear Regression Line
  • Polynomial Regression
  • Non-Linear Regression
  • Model Evaluation Process
  • Cross Validation in ML
  • Methods Used for Cross-Validation
  • Types of Predictive Model
  • Confusion Matrix
  • Area Under the ROC Curve (AUC-ROC)
  • ROC Curve
  • AUC Curve
  • Application of AUC-ROC Curve
  • Mean Squared Error (MSE)
  • Root Mean Squared Error (RMSE)
  • K-fold Cross Validation
  • Hands-On Linear Regression

Module 3: Classification

  • Introduction to Classification
  • Classifier
  • K-Nearest Neighbours
  • How KNN works?
  • Decision Tree
  • Why to Use Decision Tree?
  • Decision Tree Terminologies
  • Decision Tree Steps
  • Advantages and Disadvantages (Decision Tree)
  • Logistic Regression
  • Logistic Function (Sigmoid Function)
  • Equation of Logistic Regression
  • Types of Logistic Regression
  • Support Vector Machine (SVM)
  • Why it is called Naive Bayes?
  • Bayes Theorem
  • Advantages and Disadvantages of NB classifier
  • Types of Naive Bayes Model
  • Random Forest Classification
  • Why Random Forest
  • Application of Random Forest Classification
  • Advantages and Disadvantages of RF
  • Hands-On Logistic Regression

Module 4: Unsupervised Learning

  • Introduction to Unsupervised Learning
  • Types of Unsupervised Algorithm
  • Advantages and Disadvantages of UL
  • Unsupervised Learning Algorithms
  • K-Means Clustering
  • Steps for K-means Clustering
  • Elbow Method
  • Hierarchical Clustering
  • Why Hierarchical Clustering
  • Density Based Clustering (DBSCAN)
  • Apriori Algorithm
  • Components of Apriori Algorithm
  • Hands-On Clustering

Module 5: Dimensionality Reduction

  • Dimensionality Reduction
  • Need of Dimensionality Reduction
  • Types of Dimensionality Reduction
  • Principal Component Analysis (PCA)
  • Steps for PCA Algorithm
  • What is Variance?
  • What is Covariance?
  • What is Correlation?
  • Application of PCA
  • What is P-Value?
  • Hypothesis Testing
  • Hypothesis in Statistics
  • Critical Values
  • Z Test
  • Chi-Square Test
  • ANOVA
  • Normal Distribution
  • Statistical Significance
  • Errors in P-value
  • Linear Discriminant Analysis (LDA)
  • Working of Linear Discriminant Analysis
  • How to Prepare Data for LDA
  • Real World Application of LDA
  • Difference Between PCA and LDA
  • Overfitting and Underfitting in ML
  • How to Avoid the Overfitting in the Model
  • Hands-On PCA

Module 6: Deep Learning

  • Introduction to Deep Learning
  • Importance of Deep Learning
  • Neural Network Architecture
  • Neural Network Components
  • Neural Network Algorithms
  • Convolutional Neural Networks (CNNs)
  • Long Short Memory Network (LSTMs)
  • Recurrent Neural Networks (RNNs)
  • Generative Adversarial Networks (GANs)
  • Radial Basis Function Networks (RBFN)
  • Multilayer Perceptrons (MLPs)
  • Self-Organizing Maps (SOMs)
  • Deep Belief Networks (DBNs)
  • Restricted Boltzmann Machine (RBMs)
  • Artificial Neural Networks (ANNs)
  • Feed Forward Neural Network
  • Autoencoders
  • MNIST
  • Deep Learning Applications

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Who should attend this Machine Learning with Python Training Course?

The Machine Learning with Python Course in Sacramento is highly regarded as one of the most sought-after Programming Courses available and is designed for those who want to get better at understanding the intricacies surrounding Machine Learning through Python for complex algorithm development. The Python with Machine Learning Training Course can benefit individuals such as:

  • Data Scientists
  • Software Developers
  • Data Analysts
  • Business Analysts
  • Statisticians
  • Ethical Hackers
  • Cyber Security Professionals 

Prerequisites of the Machine Learning with Python Training Course

There are no formal prerequisites for this Python with Machine Learning Training Course.

Machine Learning with Python Training Course Overview

This course in Machine Learning with Python in Sacramento offers an immersive introduction to one of the most groundbreaking and rapidly advancing fields in technology. This course focuses on the intersection of Machine Learning and Python, a powerful programming language that has become a cornerstone in data analysis and machine learning. Understanding these concepts is crucial in today's data-driven world, where automation and predictive analytics are transforming industries.

Grasping the fundamentals of this course is essential for data scientists, analysts, and programmers who aspire to implement machine learning techniques in their work in Sacramento. As industries increasingly rely on data for decision-making, professionals equipped with skills from a Programming Training Course in machine learning and Python will find themselves at the forefront of innovation and problem-solving, making them invaluable assets in various technological and scientific fields.

The Knowledge Academy's 2-day course in Machine Learning with Python in Sacramento is designed to equip delegates with practical skills and theoretical knowledge. The course seamlessly integrates Python programming with Machine Learning principles, ensuring that participants not only understand the concepts but are also able to apply them in real-world scenarios. This intensive training is a steppingstone towards mastery in a field that is shaping the future of technology.

 Course Objectives:

  • To provide an in-depth understanding of machine learning concepts and their applications
  • To teach practical skills in Python programming specific to machine learning tasks
  • To demonstrate the integration of machine learning algorithms with Python code
  • To enhance problem-solving skills in data analysis and predictive modeling
  • To prepare participants for advanced studies and career opportunities in machine learning

Upon completion of this course in Machine Learning with Python in Sacramento, delegates will have gained not only theoretical knowledge but also practical expertise in applying Python to machine learning projects. They will be well-equipped to tackle real-world data challenges and contribute significantly to technological advancements in their respective fields.

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What’s included in this Introduction to Machine Learning with Python Training Course?

  • World-Class Training Sessions from Experienced Instructors
  • Python with Machine Learning Certificate
  • Digital Delegate Pack

Why choose us

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IT support is on hand to sort out any unforseen issues that may arise.

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Sacramento is situated near central valley at the joining of the Sacramento River and the American River, as well as it being the capital city of California it is also the sixth largest city within California and is home to around 485,199 people within 2014. Sacramento also has a metropolitan population of an estimated 2,414, 783 in 2010 therefore ranking it in third place as the largest metropolitan population within California. Sacramento is also the seat to the government of Sacramento County, and America’s most diverse city as of Harvard University civil rights project in 2002. There are a number of different types of schools, which are public, private or independent, the independent schools within Sacramento include the Waldorf School and the Sacramento Country Day School which was run by the California Association of Independent Schools as opposed to being one of the Roman Catholic Independent schools. The Public schools include Natomas Unified School District, Twin Rivers Unified School District, Sacramento City Unified School District and Elk Grove Unified School District. Some of the Universities within the city include Sacramento State (California State University, Sacramento) and University of California. Sacramento State University plays a big part in the education of students, as of 2004 they enrolled roughly 22,555 undergraduates within the eight colleges it operates. There is also a few universities with campuses in Sacramento which include the McGeroge School of law – University of Pacific, National University, Western Seminary and the University of San Francisco. All of the Universities offer students different types of courses and degrees some of which include graduate, undergraduate, bachelors, masters and doctoral degrees. Subjects can also differ depending on the institution with regards to public health sciences, administration, project management, business, sciences, law, counselling, education, mathematics, engineering, arts, sports and many more. Sacramento also consists of different schools which practise religion, these being an Islamic school the Masjid Annur, Christian schools such as the Sacramento Adventist Academy and the Capital Christian School as well as a Jewish school which is the Shalom School.

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Address

Sacremento, California

T: +1 7204454674

Ways to take this course

Experience live, interactive learning from home with The Knowledge Academy's Online Instructor-led Machine Learning With Python Training | Programming Training in Sacramento. Engage directly with expert instructors, mirroring the classroom schedule for a comprehensive learning journey. Enjoy the convenience of virtual learning without compromising on the quality of interaction.

Unlock your potential with The Knowledge Academy's Machine Learning With Python Training | Programming Training in Sacramento, accessible anytime, anywhere on any device. Enjoy 90 days of online course access, extendable upon request, and benefit from the support of our expert trainers. Elevate your skills at your own pace with our Online Self-paced sessions.

Streamline large-scale training requirements with The Knowledge Academy's In-house/Onsite at your business premises. Experience expert-led classroom learning from the comfort of your workplace and engage professional development.

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What our customers are saying

Machine Learning With Python Training | Programming Training in Sacramento FAQs

Python is a versatile programming language used in web development, data analysis, artificial intelligence, machine learning, scientific computing, game development, and more. Its popularity stems from its simplicity, ease of use, and wide range of libraries and frameworks that cater to different industries and domains.
Python is a popular language for machine learning due to its simplicity, ease of use, vast range of libraries and frameworks, and strong community support. It allows developers to quickly and easily prototype and deploy machine learning models.
Machine Learning with Python is used in various real-world applications, such as image and speech recognition, fraud detection, recommendation systems, and self-driving cars. With the skills you will learn in this course, you will be able to build Machine Learning models that can solve real-world problems.
Businesses can benefit from machine learning in various ways, such as improving decision-making, enhancing customer experience, optimising operations, detecting fraud and anomalies, and predicting trends and outcomes, leading to increased efficiency, productivity, and revenue.
In this Machine Learning with Python course, you will learn the fundamentals of machine learning and its various applications, such as virtual process assistance, email spam filtering, traffic recognition, speech recognition, self-driving cars, and other related topics.
The training fees for Python with Machine Learning Training certification in Sacramento starts from $2295
The Knowledge Academy is the Leading global training provider for Python with Machine Learning Training.
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Resources are included for a comprehensive learning experience.

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"Really good course and well organised. Trainer was great with a sense of humour - his experience allowed a free flowing course, structured to help you gain as much information & relevant experience whilst helping prepare you for the exam"

Joshua Davies, Thames Water

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