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DATA SCIENCE

Online data science courses in Kollam

Online data science courses in Kollam

Our Data Science Course is meticulously crafted to empower you with the skills and insights needed to navigate the complex landscape of data-driven decision-making. Whether you are an aspiring data scientist or a professional looking to enhance your analytical prowess, our comprehensive program caters to all levels of expertise. The role of a Data Scientist necessitates a combination of practical experience, comprehensive knowledge in Data Science, and proficiency in utilizing appropriate tools and technologies. This career path is a robust option suitable for individuals at various career stages, including both novices and seasoned professionals. Those aspiring to enter this field, regardless of their educational background, will find the Data Scientist Master’s Program particularly well-suited, especially if they possess an analytical mindset.

Immerse yourself in a comprehensive training experience that focuses on the highly sought-after skills in Data Science and Machine Learning. Gain practical insights into essential tools and technologies, such as Python, R, Tableau, and the core concepts of Machine Learning.Transform into a Data Science expert as you explore the intricacies of data interpretation, master cutting-edge technologies like Machine Learning, and refine your programming skills. Elevate your career in Data Science to new heights through this dynamic program.

About the Course

Day 1: Introduction to Data Science Learning 
Objective: Understand what data science is and its applications. What is Data Science? Introduction to Data Science in Python 

Day 2: Introduction to Statistics Learning
Objective: Understand the basics of statistics and its role in data science. Introduction to Probability and Statistics Statistics Fundamentals

Day 3: Introduction to Python Learning 
Objective: Learn the basics of Python programming language. Python for Everybody Introduction to Python

Day 4: Data Wrangling Learning                 
Objective: Learn how to clean and prepare data for analysis. Data Wrangling with Python Data Cleaning with Python

Day 5: Data Visualization Learning                 
Objective: Learn how to create visualizations and gain insights from data. Data Visualization with Python Data Visualization in Python 

Day 6: Machine Learning Fundamentals Learning
Objective: Learn the basics of machine learning and how it’s used in data science. Introduction to Machine Learning Machine Learning Fundamentals

Day 7: Exploratory Data Analysis Learning
Objective: Learn how to analyze data and identify patterns. Exploratory Data Analysis in Python Data Science Handbook

Day 8: Supervised Learning                                
Objective: Learn how to use supervised learning to make predictions. Supervised Learning with Python Machine Learning Mastery


Day 9: Unsupervised Learning Learning
Objective: Learn how to use unsupervised learning to identify patterns in data. Unsupervised Learning with Python Clustering with Scikit-Learn


Day 10: Data Ethics and Privacy Learning
Objective: Understand the ethical considerations in data science and privacy concerns. Data Ethics Data Privacy

Online data science courses in Kollam

Day 11: Linear Regression Learning                 
Objective: Learn how to use linear regression to make predictions. Linear Regression Introduction to Linear Regression Analysis


Day 12: Logistic Regression Learning                 
Objective: Learn how to use logistic regression to make binary predictions.

Day 13: Decision Trees Learning                 
Objective: Learn how to use decision trees to make predictions.

Day 14: Random Forests Learning                 
Objective: Learn how to use random forests to make predictions.

Day 15: Neural Networks Learning                 
Objective: Learn how to use neural networks to make predictions.

Day 16: Evaluation Metrics Learning                 
Objective: Learn how to evaluate the performance of machine learning models.

Day 17: Feature Engineering Learning               
Objective: Learn how to select and engineer features for machine learning models. 

Day 18: Machine Learning Algorithms Learning
Objective: Understand machine learning algorithms and their applications

Day 19: Deep Learning Learning                 
Objective: Understand deep learning and its applications, Deep Learning Introduction Lesson, Artificial Neural Network Lesson, Deep Neural Network and Tools Lesson , Tuning, and Interpretability 

Day 20: Convolutional Neural Networks (CNN) Recurrent Neural Networks Autoencoders

Day 21: Data Visualization & Web Scraping Learning                                                   
Objective: Learn how to scrape data from websites Web Scraping with Python Beautiful Soup Scrapy

Day 22: Natural Language Processing Learning
Objective: Learn how to process and analyze natural language data Natural Language Processing with Python by NLTK Spacy Tutorial

Day 23: Data Science Tools Learning                 
Objective: Learn how to use various tools for data science Anaconda Navigator Tutorial Git and GitHub Jupyter Notebook

Day 24: Data Wrangling Learning                   
Objective: Learn how to clean and manipulate data Data Wrangling with Pandas Pandas Documentation Data Wrangling with Python


Day 25: Exploratory Data Analysis Learning
Objective: Learn how to explore and analyze data Exploratory Data Analysis with Pandas Seaborn Tutorial


Day 26–30: Capstone Project Learning   
Objective: Apply all the concepts learned to complete a real-world

Tools Covered
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Projects
data science courses
BUILDING A USER BASED RECOMMENDATION MODEL FOR AMAZON

The data set provided contains movie reviews given by Amazon customers. Perform data analysis on the Amazon customer movie reviews data set and build a Machine Learning recommendation algorithm which provides the ratings for each of the users.

data science courses
RETAIL ANALYSIS WITH WALMART

One of the leading retail stores in the US, Walmart, would like to predict sales and demand accurately. The business is facing a challenge due to unforeseen demands and runs out of stock occasionally. It’s discovered that a Machine Learning algorithm is at the core of this issue. Build an ideal ML algorithm that will predict demand accurately and incorporate factors like economic conditions including CPI, unemployment index, etc.

data science courses
CUSTOMER SERVICE REQUESTS ANALYSIS

Perform data analysis on New York City 311 service request calls. You will focus on data wrangling techniques to understand data patterns and also create visualizations to categorize and prioritize complaint types, like economic conditions including CPI,  Unemployment Index, etc. Mercedes-Benz’s standards.

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COMPARATIVE STUDY OF COUNTRIES

One of the leading retail stores in the US, Walmart, would like to predict sales and demand accurately. The business is facing a challenge due to unforeseen demands and runs out of stock occasionally. It’s discovered that a Machine Learning algorithm is at the core of this issue. Build an ideal ML algorithm that will predict demand accurately and incorporate factors like economic conditions including CPI, unemployment index etc

data science courses
SALES PERFORMANCE ANALYSIS

Build a dashboard that will present monthly sales performance by product segment and product category to help clients identify the segments and categories that have met or exceeded their sales targets, as well as those that have not met their sales targets.

data science courses
PREDICT THE DEMAND OF LOAN BASED ON REGION

This project provides learners with insights into the banking sector. Learners are required to build a statistical model to predict the demand for loans in a particular region. To show the results, learners are required to provide an online dashboard that shows the plan and its progress to all stakeholders.

data science courses
BUILD MODEL TO PREDICT DIABETIC PATIENTS

The project is aligned with NIDDK (National Institute of Diabetes and Digestive and Kidney Diseases) data sets representing one of the most chronic and consequential diseases. The goal of this project is to build a model to predict the patients with diabetes by utilizing the given data set.

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