Data Science Training/Course by Experts

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Data Science - Syllabus, Fees & Duration

MODULE 1

  • The Data Science Process
  • Apply the CRISP-DM process to business applications
  • Wrangle, explore, and analyze a dataset
  • Apply machine learning for prediction
  • Apply statistics for descriptive and inferential understanding
  • Draw conclusions that motivate others to act on your results

MODULE 2

  • Communicating with Stakeholders
  • Implement best practices in sharing your code and written summaries
  • Learn what makes a great data science blog
  • Learn how to create your ideas with the data science community

MODULE 3

  • Software Engineering Practices
  • Write clean, modular, and well-documented code
  • Refactor code for efficiency
  • Create unit tests to test programs
  • Write useful programs in multiple scripts
  • Track actions and results of processes with logging
  • Conduct and receive code reviews

MODULE 4

  • Object Oriented Programming
  • Understand when to use object oriented programming
  • Build and use classes
  • Understand magic methods
  • Write programs that include multiple classes, and follow good code structure
  • Learn how large, modular Python packages, such as pandas and scikit-learn, use object oriented programming
  • Portfolio Exercise: Build your own Python package

MODULE 5

  • Web Development
  • Learn about the components of a web app
  • Build a web application that uses Flask, Plotly, and the Bootstrap framework
  • Portfolio Exercise: Build a data dashboard using a dataset of your choice and deploy it to a web application

MODULE 6

  • ETL Pipelines
  • Understand what ETL pipelines are
  • Access and combine data from CSV, JSON, logs, APIs, and databases
  • Standardize encodings and columns
  • Normalize data and create dummy variables
  • Handle outliers, missing values, and duplicated data
  • Engineer new features by running calculations • Build a SQLite database to store cleaned data

MODULE 7

  • Natural Language Processing
  • Prepare text data for analysis with tokenization, lemmatization, and removing stop words
  • Use scikit-learn to transform and vectorize text data
  • Build features with bag of words and tf-idf
  • Extract features with tools such as named entity recognition and part of speech tagging
  • Build an NLP model to perform sentiment analysis

MODULE 8

  • Machine Learning Pipelines
  • Understand the advantages of using machine learning pipelines to streamline the data preparation and modeling process
  • Chain data transformations and an estimator with scikit- learn’s Pipeline
  • Use feature unions to perform steps in parallel and create more complex workflows
  • Grid search over pipeline to optimize parameters for entire workflow
  • Complete a case study to build a full machine learning pipeline that prepares data and creates a model for a dataset

MODULE 9

  • Experiment Design
  • Understand how to set up an experiment, and the ideas associated with experiments vs. observational studies
  • Defining control and test conditions
  • Choosing control and testing groups

MODULE 10

  • Statistical Concerns of Experimentation
  • Applications of statistics in the real world
  • Establishing key metrics
  • SMART experiments: Specific, Measurable, Actionable, Realistic, Timely

MODULE 11

  • A/B Testing
  • How it works and its limitations
  • Sources of Bias: Novelty and Recency Effects
  • Multiple Comparison Techniques (FDR, Bonferroni, Tukey)
  • Portfolio Exercise: Using a technical screener from Starbucks to analyze the results of an experiment and write up your findings

MODULE 12

  • Introduction to Recommendation Engines
  • Distinguish between common techniques for creating recommendation engines including knowledge based, content based, and collaborative filtering based methods.
  • Implement each of these techniques in python.
  • List business goals associated with recommendation engines, and be able to recognize which of these goals are most easily met with existing recommendation techniques.

MODULE 13

  • Matrix Factorization for Recommendations
  • Understand the pitfalls of traditional methods and pitfalls of measuring the influence of recommendation engines under traditional regression and classification techniques.
  • Create recommendation engines using matrix factorization and FunkSVD
  • Interpret the results of matrix factorization to better understand latent features of customer data
  • Determine common pitfalls of recommendation engines like the cold start problem and difficulties associated with usual tactics for assessing the effectiveness of recommendation engines using usual techniques, and potential solutions.

Download Syllabus - Data Science
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Data Science Jobs in Sheffield

Enjoy the demand

Find jobs related to Data Science in search engines (Google, Bing, Yahoo) and recruitment websites (monsterindia, placementindia, naukri, jobsNEAR.in, indeed.co.in, shine.com etc.) based in Sheffield, chennai and europe countries. You can find many jobs for freshers related to the job positions in Sheffield.

  • Data Scientist
  • Data Analyst
  • Data Engineer
  • Data Storyteller
  • Machine Learning Scientist
  • Machine Learning Engineer
  • Business Intelligence Developer
  • Database Administrator
  • ML Engineer
  • Computer Vision Engineer

Data Science Internship/Course Details

Data Science internship jobs in Sheffield
Data Science Data Science provides a diverse set of tools for analyzing data from a range of sources, including financial records, multimedia files, marketing forms, sensors, and text files. The Data Science Process, Communicating with Stakeholders, Software Engineering Practices, Object-Oriented Programming, Web Development, ETL Pipelines, Natural Language Processing, Machine Learning Pipelines, Experiment Design, Statistical Concerns of Experimentation, A/B Testing, and Introduction to Recommendation Engines are some of the topics covered in. Identify and collect data from data sources. A data scientist is a person who uses a variety of procedures, methods, systems, and algorithms to analyze data to provide actionable insights. Effectively analyze both organized and unstructured data Create strategies to address company issues. You'll have a personal mentor who will keep track of your development. Exercises, tasks, and projects that are completed in real-time 24 hours a day, 7 days a week, A large network of like-minded newbies, an industry-recognized intellipaat credential, and individualized employment support Several data scientist responsibilities are listed below. Today's Data Scientists must possess a wide range of abilities, including the ability to work with large amounts of data, parse that data, and translate it into an easily comprehensible format from which business insights may be drawn. Creative thinking, problem-solving skills, curiosity, and a drive to learn about and investigate industry trends and development, as well as teamwork, are among the soft skills required by data scientists. This curriculum prepares you to work in a variety of Data Science professions and earn top-dollar wages.

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List of Training Institutes / Companies in Sheffield

  • NewZealandEnglishAcademy-ChristchurchCampus | Location details: Level 2/19 Sheffield Crescent, Burnside, Christchurch 8053, New Zealand | Classification: English language school, English language school | Visit Online: nzenglish.ac.nz | Contact Number (Helpline): +64 22 560 6378
  • FindAUniversityLtd | Location details: 77 Sidney St, Sheffield City Centre, Sheffield S1 4RG, United Kingdom | Classification: Corporate office, Corporate office | Visit Online: findauniversity.com | Contact Number (Helpline): +44 114 213 4334
  • NZBuildingTrainingAndCompliance | Location details: Sheffield Crescent, Burnside, Christchurch 8053, New Zealand | Classification: Building inspector, Building inspector | Visit Online: nzbtc.co.nz | Contact Number (Helpline): +64 3 595 5131
  • TheSEOWorks | Location details: Fountain Precinct Balm Green, Sheffield City Centre, Sheffield S1 2JA, United Kingdom | Classification: Internet marketing service, Internet marketing service | Visit Online: seoworks.co.uk | Contact Number (Helpline): +44 800 292 2410
  • TheUniversityOfSheffieldInternationalCollege | Location details: Velocity House, 3 Solly St, Sheffield S1 4DE, United Kingdom | Classification: Language school, Language school | Visit Online: usic.sheffield.ac.uk | Contact Number (Helpline): +44 114 215 7123
  • CastusWebDesign | Location details: Cooper Buildings, Sheffield Technology Parks, Arundel Street, Sheffield S1 2NS, United Kingdom | Classification: Website designer, Website designer | Visit Online: castus.co.uk | Contact Number (Helpline): +44 114 221 1906
  • TheSheffieldCollege | Location details: Granville Rd, Sheffield S2 2RL, United Kingdom | Classification: College, College | Visit Online: sheffcol.ac.uk | Contact Number (Helpline): +44 114 260 2600
  • SchoolOfEducation | Location details: 241 Glossop Rd, Broomhall, Sheffield S10 2GW, United Kingdom | Classification: University department, University department | Visit Online: sheffield.ac.uk | Contact Number (Helpline): +44 114 222 8177
  • IPCSDigitalChennai | Location details: Sheffield Towers, A1- 97, 4th St, Sidco Nagar, Villivakkam, Chennai, Tamil Nadu 600049, India | Classification: Training centre , Training centre | Visit Online: ipcsdigital.in | Contact Number (Helpline): +91 44 4861 6664
 courses in Sheffield
[14] The earliest proof of human profession withinside the Sheffield region turned into discovered at Creswell Crags to the east of the metropolis. It is that this tribe who're idea to have built numerous hill forts in and round Sheffield. [5] The metropolis is 29 miles (forty seven km) south of Leeds, 32 miles (fifty one km) east of Manchester, and 33 miles (fifty three km) north of Nottingham. It is traditionally a part of the West Riding of Yorkshire and a number of its southern suburbs had been transferred from Derbyshire to the metropolis council. The metropolis serves because the administrative centre of the City of Sheffield. The district borough, ruled from the metropolis, had a populace of 556,521 on the mid-2019 estimate, making it the 4th maximum populous district in England. ,[9] and the world's oldest soccer ground, Sandygate. [8] The metropolis has a protracted carrying background and is domestic each to the world's oldest soccer club, Sheffield F. C. [7] In 2011, the unparished region had a populace of 490,070.

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