VARUN TEJA

[email protected] 7780770475 Hyderabad, India

PROFESSIONAL SUMMARY

Data Scientist with 1 year of industry experience in supporting real-time machine learning projects. Strong in data preprocessing, exploratory data analysis (EDA), feature engineering, model building, and evaluation, working under guidance of senior data scientists. Experienced in applying CRISP-ML(Q) methodology to solve business problems using Python and Machine Learning.

WORK EXPERIENCE

Data Scientist
04/2025 - Present
Internity IT Service Private Limited
Worked as a junior data scientist on a real-time customer analytics project
Performed data cleaning, preprocessing, and EDA on structured datasets
Handled missing values, outliers, feature scaling, and encoding techniques
Assisted in feature engineering to improve clustering performance
Implemented machine learning models under guidance of senior team members
Evaluated model performance using Silhouette Score and Elbow Method
Interpreted model results and shared insights with senior data scientists
Supported model deployment by validating predictions on new data
Maintained documentation following CRISP-ML(Q) lifecycle

EDUCATION

B.Tech – Civil Engineering
01/2018
VIT University

SKILLS

Technical Skills: Python, NumPy, Pandas, Scikit-learn, Machine Learning, Random Forest, XGBoost, Natural Language Processing, Deep Learning, Exploratory Data Analysis, Feature Engineering, Model Evaluation, Data Visualization
Soft Skills: Analytical Thinking, Problem Solving, Attention to Detail, Collaboration, Adaptability
Tools: Git, Jupyter Notebook, VS Code, Power BI, Excel, Snowflake, AWS S3
Other: CRISP-ML(Q), Data Science Methodologies, Basic CNN, TF-IDF, N-Grams, Snowpipe, Streams, Tasks

PROJECTS

Customer Segmentation Using Machine Learning
Technologies: Pandas, NumPy, K-Means clustering
Understood business problem related to customer grouping for targeted marketing
Cleaned and preprocessed customer data using Pandas and NumPy
Performed EDA to identify customer behavior patterns
Implemented K-Means clustering for customer segmentation
Identified optimal clusters using Elbow Method and Silhouette Score
Interpreted clusters from a business perspective
Supported deployment by testing cluster assignment for new customers

CERTIFICATIONS

Data Science & AI – 360DigiTMG
Python Programming – 360DigiTMG
SQL – 360DigiTMG
Power BI – 360DigiTMG

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