certified data science using python course · during the placement process you will be mentored at...
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Certified Data Science using Python CourseExclusively for Students & Freshers witha Guaranteed Interview!
COURSE HIGHLIGHTS
Salient Features
Digital Vidya Certification
18 Live Instructor-Led Online Sessions
Lifetime Access toUpdated Content and
Videos
Industry andAcademia Faculty
3 Weeks of Project Work
Internal Competitions with Prizes
Active Q/A Forum
Interview Guarantee*
Class Labs/Home Assignment
Individual Attention to Each Learner
Industry’s TopPython Advisors
Top PythonTools Covered
Industry Relevant Curriculum Hands-on Approach Special Fee Career Mentoring
Benefits of this Program A special program for Freshers & Students that Guarantees an Interview upon suc-cessful completion. A student centric course which gets you to kickstart your Career. Special allowance for Students & Freshers to pay the fee in 3 easy installments.Great chance to shape up your Career in the Most Desired Job of the 21st Century.Additional benefits like free Tableau course, a complimentary self-paced Python Programming Basics, lifetime access to latest content & after placement career mentoring.
Eligibility Criteria for Interview Guarantee
Exclusive Fee
* For all streams other Computer Science/IT, there will be a prerequisite to do a small coding projectusing Python. The Python Basics Programming self-paced course will be made available to all students.
BE / B.Tech / MCA / MSc. IT / MA. Statistics / MA. Mathematics *CGPA of 6.0 & above (50% & above in MCA / MSc IT) 60% of Marks in 10th and 12th Exams Immediately Available to Join the OrganizationClearance of Digital Vidya Telephonic Interview Successful Completion of the Course with:
Assignments and Capstone ProjectDigital Vidya Aptitude Test Digital Vidya Coding Test Digital Vidya Interview Test Preparation Qualifier
Instalment One Installment Two Installment Three
Discounted Fee - Rs. 56,182 Rs. 25,000 (Including GST)
-10,000/- (At the time of Registration)
Fee Can Be Paid in Three Easy Installments
-10,000/- (At the time of Mini-Project. End of 10th Session)-5,000/- (At the time of initiating the first interview)
How does the Process Work?After completion of the course and successful submission of your Capstone Project, you will be aligned to go through the placement process. At the first stage of the process, you will need to pass a few internal tests until when your placement process will not start.Your Placement Advisor will guide you on the pathway and send continuous job alerts to you. You can apply to those that interest you. During the placement process you will be mentored at each step of your journey, right from resume creation to final interview.
Python Programming Basics
Rs. 5,000 Rs. 41,182 Rs. 10,000 = Rs. 56,182+ +
Data Science Using Python Course
Tableau Course
Course Advisors and Instructors
Course Advisors
Ajay OhriData Scientist
Ajay Ohri is a Data Scientist and Blogger in an open source data science. Since 2007, he has published his blog DecisionStats.com.
Shweta GuptaVice President, Tech.
Shweta Gupta has 19+ years of Technology Leadership experience. She holds a patent and number of publications in ACM, IEEE and IBM journals like Redbook and developerWorks.
Manas Garg heads the Analytics for Marketing at Paypal. He takes Data Driven Decisions for Marketing Success.
Vishal is a Technology Influencer and CEO of Right Relevance. (A platform used by millions for content & influencer discovery)
Manas GargArchitect
Vishal MishraCEO & Co-Founder
Course Instructors
Ajay OhriData Scientist
Ajay Ohri is a Data Scientist and Blogger in an open source data science. Since 2007, he has published his blog DecisionStats.com.
Shweta GuptaVice President, Tech.
Shweta Gupta has 19+ years of Technology Leadership experience. She holds a patent and number of publications in ACM, IEEE and IBM journals like Redbook and developerWorks.
Manas Garg heads the Analytics for Marketing at Paypal. He takes Data Driven Decisions for Marketing Success.
Vishal is a Technology Influencer and CEO of Right Relevance. (A platform used by millions for content & influencer discovery)
Manas GargArchitect
Vishal MishraCEO & Co-Founder
Rohit Kumar is a Big Data Researcher with publications in many prestigious international conferences. He has 6 plus years experience in industry and expertise in various pro-gramming languages including Java, Scala, C++, Python, and Haskel. He works in variety of different database systems such as MySQL, Microsoft SQL, and Oracle Coher-ence and in many Big Data systems like Hadoop, Apache Spark, Apache Storm, Kafka, MongoDB.
Shweta GuptaVice President, Tech.Pritesh SrivastavaData Analyst (Contractor)
Shweta GuptaVice President, Tech.
Vaishali GargLead Trainer, Data Science
Vaishali Garg is a self-taught data analyst with a health-care background. She use Python with Pandas, Numpy, Matplotlib and Scikit. She has keen interest in data analysis using Pandas and is actively answer Pandas related ques-tions on StackOverflow (Vaishaligarg, alias: A-Za-z). Some of her analysis is available on Kaggle.
COURSE ADVISORS AND INSTRUCTORS
Course Advisors and Instructors
Shweta GuptaVice President, Tech.Pritesh SrivastavaData Analyst (Contractor)
Shweta GuptaVice President, Tech.
Rohit Kumar is a Big Data Researcher with publications in many prestigious international conferences. He has 6 plus years experience in industry and expertise in various pro-gramming languages including Java, Scala, C++, Python, and Haskel. He works in variety of different database systems such as MySQL, Microsoft SQL, and Oracle Coher-ence and in many Big Data systems like Hadoop, Apache Spark, Apache Storm, Kafka, MongoDB.
Rohit KumarResearch Assistant, ULB
Rohit Kumar is a Big Data Researcher with publications in many prestigious international conferences. He has 6 plus years experience in industry and expertise in various pro-gramming languages including Java, Scala, C++, Python, and Haskel. He works in variety of different database systems such as MySQL, Microsoft SQL, and Oracle Coher-ence and in many Big Data systems like Hadoop, Apache Spark, Apache Storm, Kafka, MongoDB.
Shweta GuptaVice President, Tech.Pritesh SrivastavaData Analyst (Contractor)
Shweta GuptaVice President, Tech.
Shaheer Ahmed KhanResearcher
Shaheer is a Data Analytics professional, currently working for Laboratoire d’informatique de Grenoble, a leading research laboratory of informatics in France. His deep learning for perception makes hime a perfect Data Analyt-ics professional. He holds expertise in Data Mining, Ma-chine Learning, Information Retrieval, Concurrent and Distributed Systems, Web Programming and Advance Pro-gramming.
Rohit Kumar is a Big Data Researcher with publications in many prestigious international conferences. He has 6 plus years experience in industry and expertise in various pro-gramming languages including Java, Scala, C++, Python, and Haskel. He works in variety of different database systems such as MySQL, Microsoft SQL, and Oracle Coher-ence and in many Big Data systems like Hadoop, Apache Spark, Apache Storm, Kafka, MongoDB.
Shweta GuptaVice President, Tech.Pritesh SrivastavaData Analyst (Contractor)
Shweta GuptaVice President, Tech.
Muhammad Aamir SaleemData Scientist
Aamir is a data scientist who has been working in the domain of Big Data Management, Analytics and Mining for last 5 years. He has conducted several R&D projects in collaboration with academic and industrial partners. His expertise includes exploratory, descriptive and pre-scriptive data analysis, designing predictive and proba-bilistic models, and providing scalable, efficient and effective solutions using Large-scale data processing systems and advanced Data Science and Machine Learning methods.
Shweta GuptaVice President, Tech.Pritesh SrivastavaData Analyst (Contractor)
Shweta GuptaVice President, Tech.
Pritesh SrivastavaData Analyst (Contractor)
Pritesh is a Data Science enthusiast with an ability to turn data into actionable insights and meaningful stories. He possesses solid knowledge and hands-on experience of both quantitative/qualitative analysisand data mining. He is proficient in Python, Teradata SQL, deep learning, web automation and ETL tools. He also has exposure towards applied machine learning - enjoys working with Data, creating models, predictions and finding insights.Apart from his profession, he loves to travel and also procures his passion in Dramatics, Story-telling and Martial Arts.
The Python course is thoughtfully designed to allow learners with programming background to make a transition into the analytics industry with the correct skillsets using Python programmng language. It is designed in a way that the student starts with the introduction to Python programming, and in a very hands-on learning method using Jupyter Notebook, will learn the libraries of Data Scientist using Numpy, Pandas, with applied statistics and machine learning concepts and applications. Post completion of the program, learners will be prepared to device solutions for real time problems in the industry.
Python Programming
Introduction to the Basics of Python Programming
OperatorsData TypesLoops: while & forConditionals: if-elseFunctions: Defining Functions, Anonymous Functions
Scientific Computing with Python - Numerical Python (NumPy)Importance of NumpyArray CreationData TypesUnary OperationsShape Manipulation
-Reshape, Transpose, RavelArray Indexing
Boolean IndexingBroadcastingUniversal FunctionsMatrix MultiplicationStatistical Methods
-Stacking-Splitting
Copies and Views
Introduction to Data Science
Introduction to Data AnalyticsAn Overview Session for the Data Analyst, Data ScientistGetting Started with Jupyter NotebookIntroduction to the Open Data Science Learning and Competitive Platforms
An introduction topic to understand the drivers to data science field and its ecosystem.
In-depth understaing of Python Data Types, Functions and NumPy Arrays that come in handy while analysing data using Pandas.
Introduction to Pandas
Data Analysis Workflow in Python using PandasPandas Data Structures
-Series & Data FrameBasic Functions on Data FrameIndexing & Selecting Data
-Selection by Level-Selection by Position-Boolean Selection
Group By: Split-Apply- Combine
Learn Pandas - a Python library that provides high-performance, easy-to-use data structures and data analysis tools.
Handling Missing DataMerging Multiple DatasetsData Analysis Scenarios
COURSE CURRICULUM
Data Visualization
Time Series Analysis
Simple & Multi-line Plots, Multiple Figures Creating Different Types of Plots using Matplotlib and SeabornSimple Plot with X and Y Axis
Linestyles and ColorMutiple Lines on Same PlotControlling Line PropertiesAdding Lables, Gridlines, AnnotationsX and Y Ticks and RotationsSplinesLegendsWorking with Multiple Figures and AxesShare X and Y AxisAdding Subplots
Merging of Data FrameReshaping: Stack, Unstack, Pivot, MeltDummy/Indicator VariablesWorking with Text DataExtract Using Regular Expression (Regex)Pattern Matching in StringsData Loading and File FormatsLoading JSON FilesXML and HTML Web ScrapingInteracting with HTML and Web APIsWorking with DatabasesEncoding & Handling C Parse Errors
Converting Series to Time SeriesHandling Invalid DataEpoch / Date-Time IndexIndexingTime/Date ComponentsPeriod & Period IndexHandling Time ZonesParsing & Manipulating Dates
Creating Different Types of PlotsLine GraphsBar PlotsHistogramsBox PlotStacked PlotsScatter PlotPie Chart
Data Visualization using Matplotlib and Seaborn. Creating different types of plots with single or multiple lines, multiple figures and axes.
Advanced Data Analysis using Pandas
Healthcare domain:
Electroencephalography (EEG) is an electrophysiological monitoring method to record electrical activity of the brain. This capstone project focus on EEG data analysis, giving an opportunity for students to learn through complexities in dealing with such complex real-world data. It will make a very interested data science applications as this data arises from a large study to exam-ine EEG correlates of genetic predisposition to alcoholism. There were two groups of subjects: alco-holic and control and each subject was exposed to a single or two stimuli which were pictures of objects chosen from the 1980 Snodgrass and Vanderwart picture set, and capturing their reactions.
Applied Statistics and Machine Learning
Introduction and StatisticsWhat is Machine LearningMachine Learning Real World ExampleStatisticsBias and VarianceCovariance and CorrelationsStandard DeviationsProbabilityScikit-learn
Model Evaluation and Parameters Tuning
Example of the kind of course-end assignments are
Data PreprocessingLoading Datasets
Data CleansingEncoding Data
Feature SelectionWorking with Text Data
Split Train and Test DataTypes of ML Algorithms
Supervised Learning IntroductionUnsupervised Learning Introduction
Supervised Learning AlgorithmsLinear Regression
Logistic RegressionKNN
Supervised Learning Algorithms continuedNaïve Bayes
Decision TreeRandom Forest
SVMUnsupervised Learning
K-MeansHierarchical Clustering
This section will introduce the students to the machine learning concepts, and then dive into the sci-kit library. It will cover the supervised algorithms like regression, KNN, Randon Forest etc, and unsupervised learning using K-means. It will also take the students through model evaluation and tuning.
The Capstone project are created to offer complex problems to students so that they can experience an integrated experience of the complete Data Science problem solving, end to end. The approach to this project is to think, define, design, code, test and tune your solution, in such a way that students apply all aspects of the data science process.
CAPSTONE PROJECT (3 WEEKS)
Complimentary CoursesSelf-Paced
Coding Course
Our Course Participants Work at
The Placement Process
We partner with numerous organizations who directly source their Data Science manpower needs from us. From resume creation to helping you crack the final interview, our dedicated placement team is always on toes to connect talent with the right opportunity.
The Candidates resume is refined and polished as per Market Stan-dards to help them be searchable.
The Candidates are prepared for an initial quiz and a coding test.
Finally, the candidates are prepared for the final round of interview.
The Resume is shared with relevant organisations by our
placement team.
Natural Language Processing: This is one of the most applied areas for AI, Data Science, and ML. The real world is filled with text data, and it is usually messy hence cleaning and handling text is an important step towards making smarter Machine Learning algorithms. Using one such dataset from the movie domain, you will apply the most common concepts of NLP. This project will empower the learners to build intermediate skills in the natural language processing domain, and empower them to start building up on all the latest technol-ogy advancements.
TOOLS COVERED
PLACEMENT PROCESS
Batch OptionsRegular Batch (3 Hours/ Weekend) - 7 hrs -10 hrs of Weekly Studies with 1 Assignment
+91-84680-02880
www.digitalvidya.com
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- Naresh Mehta AVP – Data Science & Analytics ,
-Ajay Ohri Data Scientist,
”Good to see Digital Vidya becoming increasingly more involved in covering data science vertical, look forward to collaborate with DV to help shape this industry.
”Yes, I like the huge investment Digital Vidya is doing to create the next generation of talent. Initial feedback suggests Digital Vidya produces high-quality Data Analysts.
Industry Experts Speak
-Madhu Vadlamani Lead Analytics,
”I can see a good course structure and well-designed syllabus for those who are passionate enough to enter into the analytics world. The platform helps people grow professionally and in very less time.
rthis Speak
-Vani Ananthamurthy(Business Operations Senior Analyst, Accenture)
”I was looking for customized content and I found the same in Digital Vidya. Content is structured and well planned. Classes were very interactive and trainer’s presentation skills were very good. People who are new to the subject can also understand clearly. Thank you so much!
-Nanddeep Nasnodkar (Sr. Software Developer - Remote Software Solutions)
”This course gets you started from very basics, makes you think and solve the assignments, and suddenly you find yourself doing Data Analytics all by yourself!
WHAT MAKES US PROUD