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Hello, I'm GV 🐻

An aspring Quantitative Trader/Developer

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A little bit about myself

  • I am a 22-year-old graduate student pursuing a masters in Financial Mathermatics at NC State University. I wish to puruse a career as a Quantitative Trader at a propietary trading firm. I am currently interning as a Data Analyst at a Mortgage Insurance Company and have interned as a quantitative analysis intern at a trading firm. Looking for opportunities to learn and build new trading strategies. I am available for contact at the links below.

1. I am currently working on a Pairs Trading strategy for USA equities that looks for cointegration between two stocks and uses statsitical arbitrage to have buy/sell signals. To know more about pairs trading please go HERE

2. I am currently learning C++ for Quantitative Finance and Probability

3. All of my projects can be found here at My repositories

4. Ask me anything about Python, R, Statistical Data Analysis, Technical Analysis, Portfolio Management and Probability theory.

5. An ongoing long project of mine which I just started again is my technical analysis visualization tool. In recent times I did find that technical analysis has been a tool that hasn't been of much help in the industry but I hope that this can be the beginning of a tool for Quant trading.

Some of my projects are listed below

  1. Visualising Technical Analysis Indicators using Dash : With this web application I aim to provide a free open source method for new learners or technical analysts to visualize and understand various technical indicators. Learners and traders can use this application to select various technical indicators and then visualize and interact with them. This can help new financial engineers get a better understanding of how various parameters of a technical indicator will affect the way we execute trades. It uses the technical analysis library available for python and Plotly's interactive visualization tools to provide the user with a dynamically changing and interactive tool. Source Code can be found here

  2. Pairs Trading : Implementing Pairs Trading using time series analysis. Conducted data extraction for 200 Stocks and ETFs spanning various industries to identify highly correlated and cointegrated stock pairs. Performed stationarity tests on the spread between selected pairs using the Augmented Dickey Fuller Test. Generated trading signals and evaluated the profitability of the Pairs Trading Strategy, achieving an impressive 21% Compound Annual Growth Rate (CAGR) on a potential pair. Source code can be found here

  3. Sentiment Analysis for Evenet Driven Stock price Prediction : Led a team in developing a novel neural tensor network for event embedding. Utilized innovative web scraping and NLP techniques to gather and preprocess extensive news data. Achieved a 97% accuracy rate in predicting sentiment from news headlines using a convolutional neural network. Source code can be found here

  4. Flight Delay Prediction: During my time at the Solarillion Foundation as a Research Assistant I developed a two stage machine learning model after data wrangling that predicts the time, in minutes, by which a flight will arrive late or not. Source code can be found here

  5. Credit Risk analysis and Predictive Modelling : To expand my programming skills I implemented various R functions to bring about a report on the german credit data, which contains information about people who have taken loans and have either defaulted or paid them duely. Source code can be found here

  6. Portfolio Optimization using R : This is second web application I had deployed using RStudio and shiny. It uses Perfomance Analytics and Portfolio Optimzation to reduce a user's risk and gives them the optimal percentage weight of each stock in their portfolio. This is a reactive application and can be used on any device. Source code and applicaiton can be found here

  7. My first Web application using Shiny : This is my first project and first shiny web application. I wanted to explore the Shiny package in R, which led me to make an interactive visualization of the movement of the Collatz Conjecture. Source code and application can be found here

Languages and Tools:

cplusplus python python

Connect with me:

           

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 suryasashankgundepudi

suryasashankgundepudi

Pinned

  1. technical-analysis-visualization-using-python-v1 technical-analysis-visualization-using-python-v1 Public

    This is a web application to visualize various famous technical indicators and stocks tickers from user

    Python 7 4

  2. investment-management-and-portfolio-optimization investment-management-and-portfolio-optimization Public

    Contains source code for Shiny Web application for portfolio optimization

    R 1 2

  3. Flight_Delay_Prediction Flight_Delay_Prediction Public

    This repository is a project that dealing with the problem of Flight scheduling

    Jupyter Notebook 1

  4. credit-risk-analysis-and-predictive-modelling credit-risk-analysis-and-predictive-modelling Public

    Credit Risk analysis and predictive modelling of the German credit dataset. This repository holds all the R-scripts and markdown files for my report on the same

    HTML 1

  5. course-certifications course-certifications Public

    Within this repository are a list of all my course certifications and also credential URLfor the same

  6. my-first-shiny-app my-first-shiny-app Public

    This is my first shiny application. Plots the collatz conjecture movement for an input from the user

    R