Костянтин
Data analyst
- Рассматривает должности:
- Data analyst, Product analyst, Business analyst
- Город проживания:
- Киев
- Готов работать:
- Удаленно
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Business Economics Student | Aspiring Data Analyst
Kyiv, Ukraine • [
SUMMARY
Second year Business Economics student at KSE with a strong analytical foundation and hands-on
experience with building end-to-end data projects. Proficient in Excel/Google Sheets, SQL, Python, and
R, focus on translating raw data into actionable business insights. Built a full retention and delivery
analysis on a real 100k+ order e-commerce dataset.
EDUCATION
Kyiv School of Economics (KSE)
Business Economics Graduating 2028
● Key Courses: Big Data Analytics, Statistics and Data Visualization, Marketing,
Financial Accounting, Microeconomics & Macroeconomics, Econometrics
HARD SKILLS
● SQL: Advanced Joins, CTEs, Window Functions, Conditional Aggregations, Subqueries
● Python: Pandas, NumPy, Matplotlib, Seaborn
● R: Tidyverse — Advanced dplyr, ggplot2
● Tableau: Data Visualization, Interactive Dashboards, Data Filtering
● Excel / Google Sheets: Pivot Tables, Advanced Formulas
● Data Analysis: Exploratory Data Analysis (EDA), KPI Tracking, Cohort Retention & CLV
Modeling, Geospatial Analysis, Data Storytelling.
● Tools: BigQuery, GoogleColab, DataCamp, GA4
PROJECTS
Olist E-Commerce: Delivery, Satisfaction & Retention Analysis (GitHub) | Python, SQL (SQLite3)
SQL — Delivery & Customer Satisfaction Analysis
• Find out how delivery speed and on-time rate affect customer review scores (1–5 stars).
• Quantified the delivery impact: Satisfied (5-star reviewers) receive their orders in 10.6 days on
average, which is twice as fast as unsatisfied(1-star reviewers) where the delivery time is 21.3 days
on average.
• Missing the estimated delivery date drops the average score from 4.29 → 2.27.
• Found regional logistics bottlenecks across Brazil. Some cities had an overdue rate of over 20%.
Python — Cohort Retention, CLV & Geospatial Analysis
• Built monthly cohort retention heatmaps using Pandas and Seaborn. The plots revealed a critically
low platform repeat-purchase rate.
• Calculated global CLV and per-cohort cumulative CLV growth curves; aggregated AOV, CLV, and
retention rate by Brazilian state to identify high and low value regions.
• Merged SQL findings with Python findings to showcase the full pipeline:
Slow Delivery → Poor Satisfaction → Low Retention.
CERTIFICATIONS
● DataCamp:
○ SQL Associate certificate
LANGUAGES
• Ukrainian: Native
• English: Upper-Intermediate / Advanced (B2–C1)
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