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Juan Diego G. Cloud, Backend and Machine Learning

My name is Juan Diego G. and I have over 1 years of experience in the tech industry. I specialize in the following technologies: Python, SQL, Microsoft Power BI, Stata, Linux, etc.. I hold a degree in Bachelor's degree. Some of the notable projects I’ve worked on include: Automated Trading Bot with AI and Telegram Integration, Risk-Reward Simulator for Trading Strategies, Machine Learning-Driven Trading Strategy with Alpaca API, Forex Trading Assistant with Fibonacci Retracement Analysis, Neural Network Stock Price Predictor, etc.. I am based in Lima, Peru. I've successfully completed 18 projects while developing at Softaims.

I employ a methodical and structured approach to solution development, prioritizing deep domain understanding before execution. I excel at systems analysis, creating precise technical specifications, and ensuring that the final solution perfectly maps to the complex business logic it is meant to serve.

My tenure at Softaims has reinforced the importance of careful planning and risk mitigation. I am skilled at breaking down massive, ambiguous problems into manageable, iterative development tasks, ensuring consistent progress and predictable delivery schedules.

I strive for clarity and simplicity in both my technical outputs and my communication. I believe that the most powerful solutions are often the simplest ones, and I am committed to finding those elegant answers for our clients.

Main technologies

  • Cloud, Backend and Machine Learning

    1 year

  • Python

    1 Year

  • SQL

    1 Year

  • Microsoft Power BI

    1 Year

Additional skills

  • Python
  • SQL
  • Microsoft Power BI
  • Stata
  • Linux
  • C
  • Java
  • AWS Glue
  • AWS Cloud9
  • AWS Lambda
  • Machine Learning Model
  • Machine Learning Algorithm
  • Machine Learning Framework
  • TensorFlow
  • Python Scikit-Learn

Direct hire

Potentially possible

Previous Company

Amazon Web Services

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Experience Highlights

Automated Trading Bot with AI and Telegram Integration

Developed a comprehensive trading bot using Python, integrating market data collection, data cleaning, model training, and live trading. The bot fetches data from multiple markets, including forex, stocks, and cryptocurrencies, cleans it, and uses a machine learning model for trading decisions. It integrates reinforcement learning to improve strategies and provides live updates and trading signals via a Telegram bot. Additionally, a Flask web app is included to facilitate user interaction and monitoring.

Risk-Reward Simulator for Trading Strategies

Built a simulation tool to analyze the performance of trading strategies based on risk-reward ratios and win rates. The tool models the outcome of multiple trading scenarios given parameters like account size, risk per trade, total trades, win rate, and risk-to-reward ratio. The results of each simulation are saved in CSV format and visualized through plots to help traders assess the viability and robustness of their trading approach over a series of trades.

Machine Learning-Driven Trading Strategy with Alpaca API

Developed an algorithmic trading strategy using Python and the Alpaca API for real-time stock trading and backtesting. The strategy integrates with the Alpaca brokerage for executing trades based on a machine learning model's analysis of the latest news headlines and market prices. The trading logic includes dynamic position sizing based on cash at risk and uses bracket orders to manage profit-taking and stop-loss, maximizing returns while mitigating risks. The strategy was successfully backtested over a defined period to assess its profitability.

Forex Trading Assistant with Fibonacci Retracement Analysis

Developed a Python-based assistant tool for forex trading analysis. The program reads forex data, identifies key price points using Fibonacci retracement levels, and analyzes the overall price trend for the USD/CAD pair. The assistant provides graphical representations of price trends and advice for potential trading strategies, enhancing the user's ability to interpret market data effectively.

Neural Network Stock Price Predictor

Developed a neural network model to predict stock price movements for key indices such as Apple and S&P 500. Implemented data preprocessing, model training, and evaluation techniques to achieve high directional accuracy in price change prediction. Visualized predictions and error trends over time to assess model performance, leading to better insights for stock trading strategies.

Education

  • Pontificia Universidad Católica del Perú (PUCP)

    Bachelor's degree in Economics

    2017-01-01-2023-01-01

Languages

  • English
  • Spanish

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