We are currently able to accept applicants for the live online bootcamp from the states listed below. We still encourage you to submit an app even if your state is not listed so we may notify you when we are able to move your application forward.
Arizona
Arkansas
California
Colorado
Connecticut
Delaware
Hawaii
Illinois
Indiana
Louisiana
Maine
Maryland
Massachusetts
Minnesota
Mississippi
Missouri
Montana
Nevada
New Hampshire
New Jersey
New York
North Carolina
North Dakota
Ohio
Oregon
Pennsylvania
South Carolina
South Dakota
Tennessee
Vermont
Virginia
Washington
West Virginia
Request Curriculum
Become a competitive job applicant in the data engineering field with the Metis Data Science and Engineering Bootcamp. The immersive, live online experience consists of 10 weeks of classes and five projects, plus a full Career Week where we’ll help prepare you to find a job in the field.
APPLYMODULE 1 - Exploratory Data Analysis
Week 1
Exploratory Data Analysis Basics
Learn the basics of exploratory data analysis and how to use tools such as SQL and Python libraries.
Week 2
Exploratory Data Analysis Advanced
Learn about advanced SQL and Python methods used in Exploratory Data Analysis.
PROJECT
For your project, you’ll extract insights from a messy dataset. You will also use Jupyter notebooks to write code, the pandas Python package to perform exploratory data analysis, and packages like Matplotlib to visualize results. Finally, you’ll work with an SQL-based relational database to obtain, clean, and maintain data.
MODULE 2 - Linear Regression & Web Scraping
Week 3
Linear Regression Basics and Web Scraping
Learn the basics of linear regressions, feature engineering and cross validation, and how to web scrape.
Week 4
Linear Regression Advanced
Learn about advanced methods in linear regression, which include regularization and stochastic gradient descent. Plus, we’ll introduce you to time series regression methods.
PROJECT
For your project, you’ll solve a linear regression problem. You will gather data using web scraping tools, and go in-depth into regression theory, practicing using python modules such as scikit-learn. Finally, you’ll apply foundational machine learning techniques such as validation and feature engineering.
MODULE 3 - Introduction to Data Engineering
Week 5
Advanced Coding and Cloud Computing
Learn advanced programming techniques, advanced database tools, cloud computing, and web application deployment.
Week 6
Big Data
Learn the techniques and application of big data handling tools.
PROJECT
For your project, you’ll develop a modularized data processing pipeline, incorporating tools such as cloud computing, relational and non-relational databases, web application deployment, and big data handling tools (Hadoop or Spark).
MODULE 4 - Machine Learning Classification
Week 7
Classification Basics
Learn basic classification models, classification metrics, and feature engineering for classification problems
Week 8
Classification Advanced
Learn to understand advanced classification models and how to work with imbalanced datasets.
PROJECT
For your project, you’ll solve a classification problem using algorithms such as KNN, logistic regression, Naive Bayes, decision trees, random forests, and gradient boosting. You’ll further explore the foundational concepts and techniques in supervised machine learning, determine the proper metrics to use for your modeling problem, and address potential challenges involving class imbalance.
MODULE 5 - NLP & Unsupervised Learning
Week 9
Natural Language Processing and Unsupervised Learning Basics
Learn the basics of natural language processing, recommendation systems, and dimensionality reduction. In addition, you’ll discover some basic clustering techniques.
Week 10
Natural Language Processing and Unsupervised Learning Advanced
Learn advanced clustering algorithms and natural language processing techniques.
PROJECT
For your project, you’ll analyze text data using NLP algorithms. You’ll then utilize different techniques for dimensionality reduction such as Principal Component Analysis, apply clustering algorithms such as K-means, and topic models such as Latent Dirichlet Allocation.
During Bootcamp
ONE-ON-ONE GUIDANCE
A dedicated advisor will help you map out your desired job location, industry, salary, and company.
SPEAKER SERIES
Join our speaker events where industry experts will share their experiences and give you advice.
JOB SEARCH TUTORIALS
On-demand videos will teach you to build your online presence, craft a resume, and network effectively.
The Week After Bootcamp
WORKSHOPS
Join live online workshops where our industry-experienced Career Advisors will teach you how to finalize a great resume, prepare for interviews, and more.
MOCK INTERVIEWS
Mastering the interview process takes practice. Work with our experts to nail your technical and non-technical skills.
Until You’re Hired
GRADUATE DIRECTORY
You’ll be added to our graduate directory automatically. It’s a place for hiring managers to view your profile, read your resume, and review your portfolio.
CONTINUED SUPPORT
We’ll support you until you get a job. Period. Plus, you’ll get access to our Alumni Portal where opportunities are posted regularly.
10-Week, Full-time Bootcamp Program Schedule*:
Monday - Friday
11:00am - 6:00pm ET
10:00am - 5:00pm CT
8:00am - 3:00pm PT
*Includes independent project work and break.
PREREQUISITES
Experience with programming and stats
April 19 - June 25
Application deadline: March 22
May 17 - July 23
Application deadline: April 19
June 14 - August 20
Application deadline: May 17
Check out our full program schedule for a list of comprehensive course dates.
Join us for the next One Hour at Bootcamp workshop to kickstart your data journey with SQL, a foundational data skill widely used to extract data from databases.
How to Apply for the Data Science & Engineering Bootcamp
Don’t wait to apply. Applicants who are qualified will be accepted on a first come, first served basis.
The initial application takes between 10 - 15 minutes to finish.
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What does the Metis Data Science & Engineering Bootcamp include?
10 weeks of instruction
5 real-world data science projects
Career support throughout program & beyond
Individual support from your instructors & TAs
And much more!
Bootcamp modules are also offered as individual, two-week courses. This is a great choice if you’re interested in a specific topic or if you want to experience a taste of bootcamp, before committing.