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Hi there, I'm Akilsurya Sivakumar 👋

I'm passionate about Machine Learning, Data Science, Large Language Models (LLMs) and Generative AI.

I love exploring how AI can solve real-world problems and create new possibilities. Always excited to learn and share cool projects!

👨‍🎓🙋‍♂️ About Me 💼🎒:

🔭 I hold a Masters Degree in Business Analytics with a specialisation in Data Science from UT Dallas and

I have 2+ years of experience building and deploying machine learning and deep learning models.

I have a strong practical and theoretical experience in the development of Machine Learning Models and Computer Vision.

🔭 Some of the notable courses I have completed and that helped in gaining strong theoretical foundation include:

🔭 I've used different Machine Learning and Deep Learning models in real-time projects. Below are some used models:

  • Linear Regression
  • Logistic Regression
  • Support Vector Machines (SVM)
  • Decision Trees (DT)
  • Random Forests (RF)
  • K-Nearest Neighbors (KNN)
  • Deep Neural Networks
  • Convolutional Neural Networks (CNN)
  • Recurrent Neural Networks (RNN)
  • Naive Bayes (NB)
  • Gradient Boosted Decision Trees (GBDT)
  • XGBoost
  • Long Short-Term Memory (LSTM)

🔭 Below are some state-of-the-art (SOTA) time series forecasting models used in various real-time projects:

  • Auto-Regressive (AR) Model
  • Auto-Regressive Moving Averages (ARMA) Model
  • Auto-Regressive Integrated Moving Averages (ARIMA) Model
  • Neural Hierarchical Interpolation of Time Series (N-HiTS) Model
  • Seasonal Auto-Regressive Integrated Moving Averages (SARIMA) Model
  • The Prophet Forecasting Model by Facebook

🔭 Furthermore, below are some of the tools used during my experience for Generative AI:

  • Langchain
  • LangGraph
  • Retrieval Augmented Generation (RAG)
  • Llama Index
  • OpenAI API
  • Mixtral (LLM)
  • Llama 2 (LLM)
  • GPT - 3 (LLM)
  • GPT - 3.5 (LLM)
  • GPT - 4 (LLM)

🪚🔧 My Skills 😀😀:

These valuable tools and techniques have empowered me to successfully develop and comprehend intricate machine learning projects.

🖥 My Machine Learning Projects

The following links include detailed descriptions within each GitHub repository:

🚀 Heart Disease Prediction using Machine-Learning 👨🏻‍💻 Loan Default Risk Analysis
🏭 Food Vision Classification ☎️ Customer Analytics
🚀 Dog Breed Classification 👨🏻‍💻 Bulldozer Sales Prediction

.....

AKILSURYA SIVAKUMAR's Projects

annotated_deep_learning_paper_implementations icon annotated_deep_learning_paper_implementations

🧑‍🏫 59 Implementations/tutorials of deep learning papers with side-by-side notes 📝; including transformers (original, xl, switch, feedback, vit, ...), optimizers (adam, adabelief, ...), gans(cyclegan, stylegan2, ...), 🎮 reinforcement learning (ppo, dqn), capsnet, distillation, ... 🧠

clustering_analysis icon clustering_analysis

Performs an exploratory analysis on a dataset containing information about shop customers. Check that the assumptions K-means makes are fulfilled. Apply K-means clustering algorithm in order to segment customers.

datasets icon datasets

Machine learning datasets used in tutorials on MachineLearningMastery.com

deep-learning-specialization-coursera icon deep-learning-specialization-coursera

Deep Learning Specialization Course by Coursera. Neural Networks, Deep Learning, Hyper Tuning, Regularization, Optimization, Data Processing, Convolutional NN, Sequence Models are including this Course.

fastbook icon fastbook

The fastai book, published as Jupyter Notebooks

internship_tasks icon internship_tasks

This repository includes data and task description for Internship program selection Phase 1.

llm101n icon llm101n

LLM101n: Let's build a Storyteller by Andrej Karthpathy Eureka Labs

machine-learning-roadmap icon machine-learning-roadmap

A roadmap connecting many of the most important concepts in machine learning, how to learn them and what tools to use to perform them.

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