Certified Big Data & Data Science Professional - 6 Months
in Courses
Created by
Sathish Narayanan
Python is the most important and necessary topic
that every data scientist should have knowledge about. In this section, our
instructors will take you through the basics of Python and areas where it can
be used. You will learn how to use some of the current tools such as Numpy,
Pandas, and Matplotlib. Therefore, module 1 includes –
·
Environment set-up
·
Jupyter overview
·
Python Numpy
·
Python Pandas
·
Python Matplotlib
·
Python Seaborn
Used for statistical and data analysis, R
programming language is one of the advanced statistical languages used in data
science. This module teaches you how to explore data sets using R. Here you
will learn –
·
An introduction to R
·
Data structures in R
·
Data visualization with R
·
Data analysis with R
When working with data, the knowledge of
statistics is necessary and an important skill set that you must have. In this
module, you will learn –
·
Important statistical concepts used in data
science
·
Difference between population and sample
·
Types of variables
·
Measures of central tendency
·
Measures of variability
·
Coefficient of variance
·
Skewness and Kurtosis
Inferential statistics is used to make
generalizations of populations, from which samples are drawn. This is a new
branch of statistics, which helps you learn to analyze representative samples
of large data sets. In this module, you will learn –
·
Normal distribution
·
Test hypotheses
·
Central limit theorem
·
Confidence interval
·
T-test
·
ANOVA
·
Type I and II errors
·
Student’s T distribution
This lesson will help you understand how to
establish a relationship between two or more objects. Here you will learn –
·
Linear Regression
·
Logistic Regression
·
R square
·
Scatter Plot and Correlation
In this lesson you will learn –
·
Data visualization
·
Missing value analysis
·
The correction matrix
·
Outlier detection analysis
This is a comprehensive module to help you
understand how to make machines or computers interpret human language. You will
learn –
·
Python Scikit tool
·
Neural networks
·
Support vector machine
·
Decision tree classifier
·
Feature Engineering
·
Model Evaluation
·
Naive Bayes
·
Ensemble methods
·
KNN
In
this lesson, you will learn –
·
Trend and seasonality - Trend is a systematic linear or non-linear component in Time Series
metrics, which changes over a while and does not repeat.
Seasonality is a systematic linear or non-linear component in Time Series
metrics, which changes over a while and repeats.
·
Decomposition - This
module will teach you how to decompose the time series data into Trend and
Seasonality.
·
Smoothing (moving average) - This module will teach you how to use this method for univariate data.
·
SES, Holt & Holt-Winter Model - SES, Holt, and Holt-Winter Models are various Smoothing models, and you
will learn everything you need to know about these models in this module.
·
AR, Lag Series, ACF, PACF - In this module, you will learn about AR, Lag Series, ACF, and PACF
models used in Time Series.
·
ADF, Random walk and Auto Arima - In this module, you will learn about ADF, Random walk, and Auto Arima
techniques used in Time Series.
Tableau is a sophisticated business intelligence
tool used for data visualization. In this lesson, you will learn –
·
Working with Tableau
·
Deep diving with data and connection
·
Creating charts
·
Mapping data in Tableau
·
Dashboards and stories
In
this lesson, you will learn –
·
ML on cloud platform
·
ML on AWS
·
ML on Microsoft Azure
Assignments
for assessment
Projects
Internship
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