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Hi there, I'm Julius Maliwat 👋

📍 Milan, Italy | 📧 [email protected]

As a Junior Software Engineer at KPMG, I'm deeply engaged in data science and software development, crafting solutions that bridge the gap between data and actionable insights. With my academic foundation in data science and statistics from the University of Milano-Bicocca, I am driven to tackle complex challenges through innovative technologies.

🔧 Technologies & Tools

  • Languages: Python, JavaScript, R, SQL
  • Data Science Stack: pandas, scikit-learn, seaborn, Tableau, PowerBI, KNIME, tidyverse
  • Software Engineering Stack: React, Git, Node.js, Flask, Dash

💼 Work Experience

  • Junior Software Engineer at KPMG (07/2023 – Present | Milan, Italy)
  • Research Intern at University of Milano-Bicocca (03/2023 – 05/2023 | Milan, Italy)

🎓 Education

  • M.Sc in Data Science (Expected Sep 2025) - University of Milano-Bicocca
  • B.Sc in Statistics (110/110 with honors) - University of Milano-Bicocca
    • Thesis: "A Machine Learning Application for Meta-Analysis in Clinical Settings". The full thesis can be found here.

🛠️ Projects

  • META Champions in League of Legends: A data-driven project to identify META champions in League of Legends, utilizing Python for data collection and analysis.
  • Bio-Signal Indicators for Smoking Behavior: Utilizing machine learning to analyze bio-signal data for indicators of smoking behavior, showcasing the potential of ML in health informatics.
  • Decoding NBA Positions by Shots: A computational statistics project aimed at classifying basketball players' roles based on shooting data from the NBA.
  • White Wine Quality Classification: Developed for a Data Mining course, this project focuses on classifying white wine preferences using physicochemical properties.
  • Student Alcohol Consumption: This dataset analysis provides insights into the familial, social, health, and school life of secondary school students, including their end-of-year grades and alcohol consumption patterns.
  • Sleep Efficiency and Lifestyle Correlations: An analytical approach to how lifestyle factors such as caffeine, alcohol, smoking, and exercise influence sleep patterns, with visualizations through Tableau dashboards.

Julius Maliwat's Projects

bachelor-thesis icon bachelor-thesis

A comparative study of SVM, Random Forest, and BioBERT models for enhancing medical meta-analysis through accurate literature classification.

decoding-nba-positions-by-shots icon decoding-nba-positions-by-shots

A machine learning approach to categorize NBA players by role using shot characteristic data, highlighting the game's evolution over three decades.

meta-champions-lol icon meta-champions-lol

LoL META champion analysis leveraging Riot Games API, web scraping, and relational databases to strategize for Patch 13.24.

sleep-efficiency-lifestyle icon sleep-efficiency-lifestyle

Study on how caffeine, alcohol, smoking, and exercise influence sleep patterns, with insights visualized through Tableau dashboards.

smoke-signals-ml icon smoke-signals-ml

A machine learning project utilizing KNIME to analyze bio-signal data for classifying smoking behavior and identifying key health indicators impacted by smoking

student-alcohol-consumption icon student-alcohol-consumption

Analytical study on the impact of alcohol consumption on Portuguese students' academic achievements using data science methodologies in Python

tableau-project icon tableau-project

Comprehensive analysis of the UK job market trends from 2019-2021 using Tableau, highlighting occupational demands and emerging skills

white-wine-quality-classification icon white-wine-quality-classification

Exploration and modeling of white wine preferences using data mining classification to predict excellence based on physicochemical characteristics.

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