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Ugonna

Data Science Intern at Institute of Data

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Leander, Texas, United States
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Competencies

Data AnalysisIntermediate

Skilled in analyzing datasets to extract meaningful insights and support data-driven decisions.

Programming (Python, Java, C++)Advanced

Proficient in multiple programming languages with experience in scripting, automation, and data manipulation.

Data VisualizationIntermediate

Capable of creating compelling visualizations using tools like Tableau and Python libraries.

Cloud Computing (AWS, Azure)Beginner

Familiar with cloud platforms and their application in data storage, processing, and deployment.

Education

Certified Data Science and Artificial Intelligence Professional (CDSAIP)
University of Texas San Antonio
Completed 2025
DataCamp
Completed 2025
Bachelors of Science in Psychology
University of Houston - Downtown

Summary

Motivated Data Science professional with hands-on experience in data analysis, visualization, and cloud platforms. Certified in AI and Data Science, with a background in psychology, eager to leverage technical skills to solve complex data problems.

Key Achievements

  • Gained proficiency in data analysis, visualization, and hypothesis testing using Python and statistical tools.
  • Developed skills in assessing dataset quality and generating insights through visualizations.
  • Completed a comprehensive Certification in Data Science and AI from reputable institutions.
  • Applied knowledge of vectors, matrices, and calculus to real-world data problems.

Experience

Intern/Lab Work

Institute of Data
2025 - Present

Acquired knowledge in vectors and matrices, calculus, descriptive statistics and Python.. Developed skills in assessing dataset quality, generating visualisations, and conducting hypothesis tests on data.. Gained experience in querying databases using SQL.. Learned about regression analysis using the Scikit-learn Python library and how to identify and address overfitting.. Learned how to implement logistic regression, support vector machines, and Naive Bayes classification algorithms.. Explored unsupervised learning for uncovering patterns within datasets, including the application of clustering algorithms and dimension reduction.. Discovered how to use and interpret decision trees in machine learning.. Explored how ensemble methods like random forests, boosting, and stacking enhance machine learning models.. Learned about regular expressions, manipulating text, feature engineering and text classification.. Learned about artificial intelligence, exploring reinforcement learning and the application of deep learning neural networks using the Keras Python library.. Learned about cloud computing technologies such as Amazon Web Services and Google Colab and how to deploy a machine learning algorithm.

Skills

Data AnalysisProgramming (Python, Java, C++)Data VisualizationCloud Computing (AWS, Azure)
Published on CazVid - Jun 2, 2026
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