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Data Science Certification Training in Nairobi

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  • Get Classes for both Beginners and Advanced levels.
  • Best Data Science Methodology Learning.
  • Preparation of Data Science Techniques for Interview Best Practice.
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  • Enduring Fee Structures with Industrial Data Science Expert in Good Organization.
  • Data Science Certified Expert Delivered over 9+ years|12402+ Trained Students.
  • Next Data Science Certification Batch to Begin this week – Enroll Your Name Now!

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Upcoming Batches

22-Apr-2024
Mon-Fri

Weekdays Regular

08:00 AM & 10:00 AM Batches

(Class 1Hr - 1:30Hrs) / Per Session

17-Apr-2024
Mon-Fri

Weekdays Regular

08:00 AM & 10:00 AM Batches

(Class 1Hr - 1:30Hrs) / Per Session

20-Apr-2024
Sat,Sun

Weekend Regular

(10:00 AM - 01:30 PM)

(Class 3hr - 3:30Hrs) / Per Session

20-Apr-2024
Sat,Sun

Weekend Fasttrack

(09:00 AM - 02:00 PM)

(Class 4:30Hr - 5:00Hrs) / Per Session

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Get Enhance your Career With Our Data Science Course in Nairobi

  • we provide the best careers and stand out from the crowd by adding Python for Data Science to your skill repertoire. Whether you’re a complete beginner looking to start a new career or a seasoned expert looking to hone your skills, this career path is designed to rapidly transform you into a qualified, job-ready data scientist.
  • Training for Data Science Training, From a list of world-class Data Science Training trainers, learn Data Science Training through online practices, in-class seminars, and certifications.
  • concept and implementation, as well as the different characteristics that make it highly scalable, versatile, and dependable, will all be covered.
  • You can contact us for Data Science Training corporate training, and we can even tailor the curriculum to your specific needs.
  • Our Data Science Training certified expert consultant will educate using a real-time scenario-based case study and will be able to provide study materials and a PowerPoint presentation.
  • Resume & We'll provide you with the necessary information to help you pass your Data Science Training training certification.
  • Concepts: Data Science Certification , significance of Data Science Certification in today’s digitally-driven world, components of the Data Science Certification lifecycle, big data and Hadoop, Machine Learning and Deep Learning, R programming and R Studio, Data Exploration, Data Manipulation, Data Visualization, Logistic Regression, Decision Trees & Random Forest, Unsupervised learning.
  • START YOUR CAREER WITH Data Science Certification COURSE THAT GETS YOU A JOB OF UPTO 5 LACS IN JUST 60 DAYS!
  • Classroom Batch Training
  • One To One Training
  • Online Training
  • Customized Training
  • Enroll Now

This is How ACTE Students Prepare for Better Jobs

PLACED IMAGE ACTE
 

Course Objectives

    The demand for Data Science professionals in the marketplace is growing rapidly as businesses are powered by data-driven insights. As companies realize the value and potential of big data insights, they thrive on using them to create better business options. However, it's growing faster, which makes it a great option to get a data scientist into the industry.
  • The data center worker is one of the highest-paid employees.
  • Data scientists earn an average of 698,412 yen per year, according to Glassdoor.
  • Therefore, Data Science is a very attractive profession.
    Let's always be clear: Even for a job in Data Science, you shouldn't need a Data Science certification; your data preparation should be chosen based on your skills rather than a qualification, as hiring managers aren't really interested in certification. for Data Science.
    Most people need a good job, and a good salary, learning Data Science increases your chances of getting a job and a well-manicured career option. The demand for a data scientist is growing day by day as there are not many experts in the field. Learning Data Science gives you the opportunity to find a decent job in this market where it is needed right now. very lucrative career choice.
    AWS Jobs That You Can Earn With An AWS Certification. Operational Support Engineer:
  • Find out what you need to know.
  • Get Python Conveniently.
  • Learn the statistical analysis, handling, and visualization of pandas.
  • Learn Scientific Machine Learning.
  • Includes a wider range of machine learning.
  • Learn and keep practicing.
    After you have gained some practice as a computer user, consider taking the following courses: Algorithmic Analysis and Style. Scientific computing. Probability and Applied Mathematics. Modeling for engineering. Software engineering, database systems, introduction to artificial intelligence, machine learning, process, and image analysis.
Simply put, a data analyst is intelligent about existing data while someone works on new ways to collect and analyze data for analyst use. If you're into numbers and statistics in addition to programming, either path may work for your career goals. Everyone works with knowledge, but the crucial difference is what they do with that knowledge. Data scientists are leaders in deciphering knowledge, but also have experience in cryptography and mathematical modeling.

What skills do you need to analyze data?

  • Essential skills for a data analyst with high math skills.
  • Ability to analyze, model, and interpret knowledge.
  • Problem-solving skills.
  • An organized and logical approach.
  • The ability to organize work and meet deadlines.
  • Accuracy and focus on details.

Top Reasons for a Career in Data Science?

The future potential for Data Science is high. Thanks to accelerated learning and extended functions, machine learning can process data much faster. With that in mind, the time it takes to do advanced troubleshooting has dramatically reduced the need for master data for companies. and analyze your knowledge.

Would Data Scientists Improve Data Engineers?

  • Data Scientists are responsible for what data engineers can do in a given organization.
  • Although data scientists cannot be data engineers, they can acquire technical knowledge.
  • But the other extreme, when data engineers start out with Data Science, is much less popular.

How deep do you have to learn Data Science from scratch?

While it primarily took 2 to 3 years to get you all of this in education bachelor's and master's degrees, many claims that you can get them 6 to 7 hours a day in just six months.

Is it possible for fresh graduates to find a job in the Data Science Certification Training Course in Nairobi?

    Salary for entry-level knowledge workers is as motivating as the job itself. If you can crack the Amazon Data Science circumstance or the Google Data Science situation, the knowledge you'll get here will give you a firm hold on your career, and you'll never look back.
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Overview of Data Science Certification Training in Nairobi

With the Data Science course in Nairobi, you may advance your Data Science profession. You will receive high-quality Data Science training from leading industry practitioners in the most recent and cutting-edge Data Science and Machine Learning techniques. This Data Science programme in Nairobi, offered in conjunction with IBM, teaches you important technologies like as Python, Spark, Hadoop, and Tableau. IBM is the world's second-largest provider of Predictive Analytics and Machine Learning technologies (source: The Forrester Wave report, September 2018).A joint partnership with ACTE and IBM introduces students to integrated blended learning, making them experts in Artificial Intelligence and Data Science. This ACTE Data Science course in Nairobi (in collaboration with IBM) is designed to make its students job-ready for AI and Data science careers.

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Key Features

ACTE NairobiUSA offers Data Science Certification Training in more than 27+ branches with expert trainers. Here are the key features,

  • 40 Hours Course Duration
  • 100% Job Oriented Training
  • Industry Expert Faculties
  • Free Demo Class Available
  • Completed 500+ Batches
  • Certification Guidance

Authorized Partners

ACTE TRAINING INSTITUTE PVT LTD is the unique Authorised Oracle Partner, Authorised Microsoft Partner, Authorised Pearson Vue Exam Center, Authorised PSI Exam Center, Authorised Partner Of AWS and National Institute of Education (nie) Singapore.

Curriculum

Syllabus of Data Science Certification Course in Nairobi
Module 1: Introduction to Data Science Certification
  • What is Data Science Certification , significance of Data Science Certification in today’s digitally-driven world, applications of Data Science Certification , lifecycle of Data Science Certification , components of the Data Science Certification lifecycle, introduction to big data and Hadoop, introduction to Machine Learning and Deep Learning, introduction to R programming and R Studio.
  • Hands-on Exercise - Installation of R Studio, implementing simple mathematical operations and logic using R operators, loops, if statements and switch cases.
Module 2: Data Exploration
  • Introduction to data exploration, importing and exporting data to/from external sources, what is data exploratory analysis, data importing, dataframes, working with dataframes, accessing individual elements, vectors and factors, operators, in-built functions, conditional, looping statements and user-defined functions, matrix, list and array.
  • Hands-on Exercise -Accessing individual elements of customer churn data, modifying and extracting the results from the dataset using user-defined functions in R.
Module 3: Data Manipulation
  • Need for Data Manipulation, Introduction to dplyr package, Selecting one or more columns with select() function, Filtering out records on the basis of a condition with filter() function, Adding new columns with the mutate() function, Sampling & Counting with sample_n(), sample_frac() & count() functions, Getting summarized results with the summarise() function, Combining different functions with the pipe operator, Implementing sql like operations with sqldf.
  • Hands-on Exercise -Implementing dplyr to perform various operations for abstracting over how data is manipulated and stored.

Module 4: Data Visualization
  • Introduction to visualization, Different types of graphs, Introduction to grammar of graphics & ggplot2 package, Understanding categorical distribution with geom_bar() function, understanding numerical distribution with geom_hist() function, building frequency polygons with geom_freqpoly(), making a scatter-plot with geom_pont() function, multivariate analysis with geom_boxplot, univariate Analysis with Bar-plot, histogram and Density Plot, multivariate distribution, Bar-plots for categorical variables using geom_bar(), adding themes with the theme() layer, visualization with plotly package & building web applications with shinyR, frequency-plots with geom_freqpoly(), multivariate distribution with scatter-plots and smooth lines, continuous vs categorical with box-plots, subgrouping the plots, working with co-ordinates and themes to make the graphs more presentable, Intro to plotly & various plots, visualization with ggvis package, geographic visualization with ggmap(), building web applications with shinyR.
  • Hands-on Exercise -Creating data visualization to understand the customer churn ratio using charts using ggplot2, Plotly for importing and analyzing data into grids. You will visualize tenure, monthly charges, total charges and other individual columns by using the scatter plot.
Module 5: Introduction to Statistics
  • Why do we need Statistics?, Categories of Statistics, Statistical Terminologies,Types of Data, Measures of Central Tendency, Measures of Spread, Correlation & Covariance,Standardization & Normalization,Probability & Types of Probability, Hypothesis Testing, Chi-Square testing, ANOVA, normal distribution, binary distribution.
  • Hands-on Exercise -– Building a statistical analysis model that uses quantifications, representations, experimental data for gathering, reviewing, analyzing and drawing conclusions from data.
Module 6: Machine Learning
  • Introduction to Machine Learning, introduction to Linear Regression, predictive modeling with Linear Regression, simple Linear and multiple Linear Regression, concepts and formulas, assumptions and residual diagnostics in Linear Regression, building simple linear model, predicting results and finding p-value, introduction to logistic regression, comparing linear regression and logistics regression, bivariate & multi-variate logistic regression, confusion matrix & accuracy of model, threshold evaluation with ROCR, Linear Regression concepts and detailed formulas, various assumptions of Linear Regression,residuals, qqnorm(), qqline(), understanding the fit of the model, building simple linear model, predicting results and finding p-value, understanding the summary results with Null Hypothesis, p-value & F-statistic, building linear models with multiple independent variables.
  • Hands-on Exercise -Modeling the relationship within the data using linear predictor functions. Implementing Linear & Logistics Regression in R by building model with ‘tenure’ as dependent variable and multiple independent variables.
Module 7: Logistic Regression
  • Introduction to Logistic Regression, Logistic Regression Concepts, Linear vs Logistic regression, math behind Logistic Regression, detailed formulas, logit function and odds, Bi-variate logistic Regression, Poisson Regression, building simple “binomial” model and predicting result, confusion matrix and Accuracy, true positive rate, false positive rate, and confusion matrix for evaluating built model, threshold evaluation with ROCR, finding the right threshold by building the ROC plot, cross validation & multivariate logistic regression, building logistic models with multiple independent variables, real-life applications of Logistic Regression
  • Hands-on Exercise -Implementing predictive analytics by describing the data and explaining the relationship between one dependent binary variable and one or more binary variables. You will use glm() to build a model and use ‘Churn’ as the dependent variable.
Module 8: Decision Trees & Random Forest
  • What is classification and different classification techniques, introduction to Decision Tree, algorithm for decision tree induction, building a decision tree in R, creating a perfect Decision Tree, Confusion Matrix, Regression trees vs Classification trees, introduction to ensemble of trees and bagging, Random Forest concept, implementing Random Forest in R, what is Naive Bayes, Computing Probabilities, Impurity Function – Entropy, understand the concept of information gain for right split of node, Impurity Function – Information gain, understand the concept of Gini index for right split of node, Impurity Function – Gini index, understand the concept of Entropy for right split of node, overfitting & pruning, pre-pruning, post-pruning, cost-complexity pruning, pruning decision tree and predicting values, find the right no of trees and evaluate performance metrics.
  • Hands-on Exercise -Implementing Random Forest for both regression and classification problems. You will build a tree, prune it by using ‘churn’ as the dependent variable and build a Random Forest with the right number of trees, using ROCR for performance metrics.
Module 9: Unsupervised learning
  • What is Clustering & it’s Use Cases, what is K-means Clustering, what is Canopy Clustering, what is Hierarchical Clustering, introduction to Unsupervised Learning, feature extraction & clustering algorithms, k-means clustering algorithm, Theoretical aspects of k-means, and k-means process flow, K-means in R, implementing K-means on the data-set and finding the right no. of clusters using Scree-plot, hierarchical clustering & Dendogram, understand Hierarchical clustering, implement it in R and have a look at Dendograms, Principal Component Analysis, explanation of Principal Component Analysis in detail, PCA in R, implementing PCA in R.
  • Hands-on Exercise -Deploying unsupervised learning with R to achieve clustering and dimensionality reduction, K-means clustering for visualizing and interpreting results for the customer churn data.
Module 10: Association Rule Mining & Recommendation Engine
  • Introduction to association rule Mining & Market Basket Analysis, measures of Association Rule Mining: Support, Confidence, Lift, Apriori algorithm & implementing it in R, Introduction to Recommendation Engine, user-based collaborative filtering & Item-Based Collaborative Filtering, implementing Recommendation Engine in R, user-Based and item-Based, Recommendation Use-cases.
  • Hands-on Exercise -Deploying association analysis as a rule-based machine learning method, identifying strong rules discovered in databases with measures based on interesting discoveries.
Module 11: Introduction to Artificial Intelligence (self paced)
  • introducing Artificial Intelligence and Deep Learning, what is an Artificial Neural Network, TensorFlow – computational framework for building AI models, fundamentals of building ANN using TensorFlow, working with TensorFlow in R.
Module 12: Time Series Analysis (self paced)
  • What is Time Series, techniques and applications, components of Time Series, moving average, smoothing techniques, exponential smoothing, univariate time series models, multivariate time series analysis, Arima model, Time Series in R, sentiment analysis in R (Twitter sentiment analysis), text analysis.
  • Hands-on Exercise -Analyzing time series data, sequence of measurements that follow a non-random order to identify the nature of phenomenon and to forecast the future values in the series.
Module 13: Support Vector Machine - (SVM) (self paced)
  • Introduction to Support Vector Machine (SVM), Data classification using SVM, SVM Algorithms using Separable and Inseparable cases, Linear SVM for identifying margin hyperplane.
Module 14: Naïve Bayes (self paced)
  • what is Bayes theorem, What is Naïve Bayes Classifier, Classification Workflow, How Naive Bayes classifier works, Classifier building in Scikit-learn, building a probabilistic classification model using Naïve Bayes, Zero Probability Problem.
Module 15: Text Mining (self paced)
  • Introduction to concepts of Text Mining, Text Mining use cases, understanding and manipulating text with ‘tm’ & ‘stringR’, Text Mining Algorithms, Quantification of Text, Term Frequency-Inverse Document Frequency (TF-IDF), After TF-IDF.
Module 16: Case Study
  • This case study is associated with the modeling technique of Market Basket Analysis where you will learn about loading of data, various techniques for plotting the items and running the algorithms. It includes finding out what are the items that go hand in hand and hence can be clubbed together. This is used for various real world scenarios like a supermarket shopping cart and so on.
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Hands-on Knowledge Data Science Training Projects In Nairobi

Project 1
Generating image captions

It generates a caption for given image, and therefore the caption are going to be generated one word at a time.

Project 2
Recognition of character

It recognizes the human handwritten digits from different sources like images, papers and touch screens.

Project 3
Predicting forest fire

Predicting forest fire will help to identify hotspots or the intensity of the breakout.

Project 4
Forecasting of web traffic

It helps the servers manage the market resources within the absolute best approach and additionally avoid clean up.

Our Top Hiring Paretner for Placements

    ACTE Data Science Offers placement opportunities as add-on to every student / professional who completed our classroom in Our Data Science Certification Training in Nairobi. Some of our students are working in these companies listed below.
  • Among our partners are HCL, Wipro, Dell, Accenture, Google, CTS, TCS, IBM, and others. Data Science allows us to place our students in top multinational organizations all around the world.
  • We provide one-of-a-kind student placement websites where you may browse all interview schedules and be notified by email of any openings.
  • We will schedule interviews for learners who have completed 70% of the Training curriculum and will prepare them for face-to-face interactions when they have completed 70% of the Training program.
  • Data Science Trainers assist students in developing resumes that are pertinent to current industry expectations.
  • We offer a Placement Support Team that assists students in locating appropriate placements depending on their needs.

Get Certified By MCSE: Data Management and Analytics & Industry Recognized ACTE Certificate

Acte Certification is Accredited by all major Global Companies around the world. We provide after completion of the theoretical and practical sessions to fresher's as well as corporate trainees.

Our certification at Acte is accredited worldwide. It increases the value of your resume and you can attain leading job posts with the help of this certification in leading MNC's of the world. The certification is only provided after successful completion of our training and practical based projects.

Complete Your Course

a downloadable Certificate in PDF format, immediately available to you when you complete your Course

Get Certified

a physical version of your officially branded and security-marked Certificate.

Get Certified

About Experienced Data Science Trainers

  • Our Data Science Training is currently accessible. Trainers are highly qualified professionals with 8+ years of experience in their fields who work for huge international businesses.
  • Because all Trainers are Data Science specialists, they will use a variety of live projects throughout training sessions.
  • Our Data Science Lecturers have all worked at companies like Cognizant, Dell, Infosys, IBM, L&T InfoTech, TCS, and HCL Technologies.
  • Trainers can also assist applicants in being employed by their particular firms via the Employee Internal Hiring method.
  • Our Data Science Teachers are subject matter experts and industry professionals that have mastered functional applications and can give students the best Data Science training.
  • We have received multiple big awards for Data Science Training from well-known IT firms.

Data Science Certification Course Reviews

Our ACTE NairobiUSA Reviews are listed here. Reviews of our students who completed their training with us and left their reviews in public portals and our primary website of ACTE & Video Reviews.

Nandhini

Student

ACTE is the best training institute for Data Science and Data Analytics in BTM Layout. The trainers are well experienced and the methodology of teaching is top notch. They provide practicals along with theoretical sessions for complete understanding of the concepts. They even provide placement assistance after course completion as well.

Sathish

Software Engineer

ACTE is the best training institute to learn Data Science or any other programming language. The placement assistance is very good and students have good very high packages in the software industry.

Ebenazar

Best Data Science training institute in Tambaram with Realtime client projects and dedicated support team. I have taken Data Science training on this January and completely happy with their teachings, projects and job support after the course completion. It's a One stop destination for your Data Science And AI training in BTM Layout.

Illakiya

Student

ACTE for your career switch to Data Science..They have well experienced Trainers in ACTE who can make you industry ready. Curriculum is quite unique and includes current industry needs. They give very good job assistance also.

Tharani

Software Engineer

Its a good institute for Data Science in Porur. The teaching staff is good, they give us day wise assignments which helped me to hands on algorithms of machine learning and also provide us the backup classes. The access they provide is very helpful to listen the classes repeatedly. They provide good placement assistance. Thanks social ACTE team for your support and guidance.

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Data Science Certification Course FAQs

Looking for better Discount Price?

Call now: +91 93833 99991 and know the exciting offers available for you!
  • ACTE is the Legend in offering placement to the students. Please visit our Placed Students List on our website
  • We have strong relationship with over 700+ Top MNCs like SAP, Oracle, Amazon, HCL, Wipro, Dell, Accenture, Google, CTS, TCS, IBM etc.
  • More than 3500+ students placed in last year in India & Globally
  • ACTE conducts development sessions including mock interviews, presentation skills to prepare students to face a challenging interview situation with ease.
  • 85% percent placement record
  • Our Placement Cell support you till you get placed in better MNC
  • Please Visit Your Student Portal | Here FREE Lifetime Online Student Portal help you to access the Job Openings, Study Materials, Videos, Recorded Section & Top MNC interview Questions
    ACTE Gives Certificate For Completing A Course
  • Certification is Accredited by all major Global Companies
  • ACTE is the unique Authorized Oracle Partner, Authorized Microsoft Partner, Authorized Pearson Vue Exam Center, Authorized PSI Exam Center, Authorized Partner Of AWS and National Institute of Education (NIE) Singapore
  • The entire Data Science Certification training has been built around Real Time Implementation
  • You Get Hands-on Experience with Industry Projects, Hackathons & lab sessions which will help you to Build your Project Portfolio
  • GitHub repository and Showcase to Recruiters in Interviews & Get Placed
All the instructors at ACTE are practitioners from the Industry with minimum 9-12 yrs of relevant IT experience. They are subject matter experts and are trained by ACTE for providing an awesome learning experience.
No worries. ACTE assure that no one misses single lectures topics. We will reschedule the classes as per your convenience within the stipulated course duration with all such possibilities. If required you can even attend that topic with any other batches.
We offer this course in “Class Room, One to One Training, Fast Track, Customized Training & Online Training” mode. Through this way you won’t mess anything in your real-life schedule.

Why Should I Learn Data Science Certification Course At ACTE?

  • Data Science Certification Course in ACTE is designed & conducted by Data Science Certification experts with 10+ years of experience in the Data Science Certification domain
  • Only institution in India with the right blend of theory & practical sessions
  • In-depth Course coverage for 60+ Hours
  • More than 50,000+ students trust ACTE
  • Affordable fees keeping students and IT working professionals in mind
  • Course timings designed to suit working professionals and students
  • Interview tips and training
  • Resume building support
  • Real-time projects and case studies
Yes We Provide Lifetime Access for Student’s Portal Study Materials, Videos & Top MNC Interview Question.
You will receive ACTE globally recognized course completion certification Along with National Institute of Education (NIE), Singapore.
We have been in the training field for close to a decade now. We set up our operations in the year 2009 by a group of IT veterans to offer world class IT training & we have trained over 50,000+ aspirants to well-employed IT professionals in various IT companies.
We at ACTE believe in giving individual attention to students so that they will be in a position to clarify all the doubts that arise in complex and difficult topics. Therefore, we restrict the size of each Data Science Certification batch to 5 or 6 members
Our courseware is designed to give a hands-on approach to the students in Data Science Certification . The course is made up of theoretical classes that teach the basics of each module followed by high-intensity practical sessions reflecting the current challenges and needs of the industry that will demand the students’ time and commitment.
You can contact our support number at +91 93800 99996 / Directly can do by ACTE.in's E-commerce payment system Login or directly walk-in to one of the ACTE branches in India
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