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Back to chrisconlan/algorithmic-trading-with-python

Open-source alternatives to Algorithmic Trading With Python

30 open-source projects similar to chrisconlan/algorithmic-trading-with-python, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best Algorithmic Trading With Python alternative.

  • stefan-jansen/machine-learning-for-tradingAvatar stefan-jansen

    stefan-jansen/machine-learning-for-trading

    16,552Vezi pe GitHub↗

    This project is a comprehensive framework for engineering financial data pipelines, designed to automate the collection, cleaning, and synchronization of large-scale market datasets. It functions as a quantitative trading data engine, providing the infrastructure necessary to manage historical and real-time asset pricing information for research and machine learning workflows. The system distinguishes itself through a configuration-driven approach to orchestration, allowing users to manage complex data acquisition tasks across multiple financial providers. It features resilient middleware tha

    Jupyter Notebookartificial-intelligencedata-sciencedeep-learning
    Vezi pe GitHub↗16,552
  • achillesrasquinha/bulbeaAvatar achillesrasquinha

    achillesrasquinha/bulbea

    2,296Vezi pe GitHub↗

    :boar: :bear: Deep Learning based Python Library for Stock Market Prediction and Modelling

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  • robcarver17/pysystemtradeAvatar robcarver17

    robcarver17/pysystemtrade

    3,347Vezi pe GitHub↗

    Systematic Trading in python

    Python
    Vezi pe GitHub↗3,347
  • firmai/machine-learning-asset-managementAvatar firmai

    firmai/machine-learning-asset-management

    1,740Vezi pe GitHub↗

    Machine Learning in Asset Management (by @firmai)

    Jupyter Notebookalgorithmic-tradingassets-managementgoogle-colab
    Vezi pe GitHub↗1,740

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  • charliedream1/ai_quant_tradeAvatar charliedream1

    charliedream1/ai_quant_trade

    5,120Vezi pe GitHub↗

    aiquanttrade is an AI-driven quantitative trading platform that enables the development, backtesting, and deployment of trading strategies powered by machine learning and artificial intelligence. It provides a complete local environment for quantitative research, simulation, and automated live trading through brokerage APIs, supporting both historical backtesting and real-time paper trading without capital risk. The platform distinguishes itself through a modular, event-driven architecture that separates strategy logic from execution, allowing rule-based and machine learning models to be co

    Jupyter Notebookcppjupyter-notebookkeras
    Vezi pe GitHub↗5,120
  • ai4finance-llc/finrl-libraryAvatar AI4Finance-LLC

    AI4Finance-LLC/FinRL-Library

    15,443Vezi pe GitHub↗

    FinRL-Library is a reinforcement learning trading framework and algorithmic trading library used to develop and backtest automated financial trading strategies. It functions as a quantitative trading pipeline and financial market simulator, allowing users to build decision policies that optimize asset trading across various financial markets. The framework features a modular integration system for swapping reinforcement learning algorithms through a consistent API. It utilizes a standardized environment wrapper to encapsulate market dynamics into a state-action-reward interface, facilitating

    Jupyter Notebook
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    alexgolec/tda-api

    1,317Vezi pe GitHub↗

    A TD Ameritrade API client for Python. Includes historical data for equities and ETFs, options chains, streaming order book data, complex order construction, and more.

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    ageron/handson-ml

    25,608Vezi pe GitHub↗

    This is a machine learning educational repository consisting of a collection of notebooks and code examples. It provides practical implementations of diverse machine learning algorithms and workflows, ranging from traditional scientific computing to deep learning. The project features specific implementations of Scikit-Learn models, such as decision trees, random forests, and support vector machines, as well as TensorFlow examples for building neural networks, convolutional layers, and recurrent architectures. It also includes tutorials on reinforcement learning development and the creation o

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    Vezi pe GitHub↗25,608
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    alexanderwanyoike/the0

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    Open Source Algorithmic Trading Engine

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    AlexanderMerkel/binance-fix-connector-python

    0Vezi pe GitHub↗

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    artem-zinnatullin/TheContext-Podcast

    622Vezi pe GitHub↗

    Podcast about Android Development with Hannes Dorfmann, Artem Zinnatullin, Artur Dryomov and wonderful guests!

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    alpacahq/pipeline-live

    207Vezi pe GitHub↗

    Pipeline Extension for Live Trading

    Python
    Vezi pe GitHub↗207
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    alpacahq/pylivetrader

    684Vezi pe GitHub↗

    Python live trade execution library with zipline interface.

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    Vezi pe GitHub↗684
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    anderson-joyle/blockchain-for-humans

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    adrianmoisey/learn-python

    240Vezi pe GitHub↗

    A collection of links that teach python

    Vezi pe GitHub↗240
  • antonio-morales/fuzzing101Avatar antonio-morales

    antonio-morales/Fuzzing101

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    Fuzzing101 is an educational resource providing a structured curriculum and containerized security labs for learning software fuzzing and vulnerability research. It functions as a training course that guides users through the process of identifying security flaws using systematic input manipulation and memory corruption analysis. The project distinguishes itself by providing isolated environments that ensure consistent build dependencies for practicing software instrumentation and crash triaging. It includes a practical tutorial on using evolutionary fuzzing engines and instrumentation tools

    Vezi pe GitHub↗3,796
  • anotiawang/open-assistant-helperAvatar AnotiaWang

    AnotiaWang/open-assistant-helper

    27Vezi pe GitHub↗

    English | 简体中文

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  • alex/what-happens-whenAvatar alex

    alex/what-happens-when

    43,189Vezi pe GitHub↗

    This project is a collaborative knowledge base and technical learning resource that provides a detailed breakdown of the internal processes occurring within modern computing environments. It serves as a comprehensive educational reference, tracing the step-by-step operations triggered by common user interactions and network requests to explain how hardware and software components interact across the entire stack. The guide distinguishes itself by offering deep technical insights into the journey from physical input to visual output. It covers the low-level mechanics of hardware interrupt hand

    Vezi pe GitHub↗43,189
  • aphyr/distsys-classAvatar aphyr

    aphyr/distsys-class

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    This project provides educational materials and courseware focused on the theoretical and practical foundations of distributed systems design. It serves as a comprehensive curriculum covering the disciplines of consensus, data consistency, reliability engineering, and scalability. The instructional content focuses on achieving cluster agreement through consensus algorithms and managing system-wide state via coordination frameworks. It includes a dedicated guide to data theory, exploring replication strategies, consistency models, and data convergence. The courseware covers a broad capability

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    arnas/awesome-pytorch-scholarship

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    aronwalsh/MLforMaterials

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    Online resource of a practical machine learning course in the Department of Materials at Imperial College London.

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    andrewt3000/DL4NLP

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    State of the art resources for NLP sequence modeling tasks such as machine translation, image captioning, and dialog.

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    asavinov/intelligent-trading-bot

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    Intelligent Trading Bot: Automatically generating signals and trading based on machine learning and feature engineering

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    ashishpatel26/Andrew-NG-Notes

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    This project is a collection of structured study notes and notebooks serving as an educational resource for deep learning and neural network fundamentals. It provides a technical reference for implementing machine learning theory, covering everything from basic network design to the construction of advanced architectures. The material specifically focuses on the implementation of convolutional neural networks for computer vision and sequence models for natural language processing. It includes detailed guidance on building object detection systems, face recognition, and speech transcription mo

    Jupyter Notebookandrew-ngandrew-ng-courseandrew-ng-machine-learning
    Vezi pe GitHub↗3,594
  • ashishpatel26/real-time-ml-projectAvatar ashishpatel26

    ashishpatel26/Real-time-ML-Project

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    A curated list of applied machine learning and data science notebooks and libraries across different industries.

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    augiemazza/varrd

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    AI-powered trading research platform. Test any idea on stocks, futures, and crypto with event studies, backtesting, and statistical validation. MCP server with 8 tools. pip install varrd.

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    Vezi pe GitHub↗20
  • avik-jain/100-days-of-ml-codeAvatar Avik-Jain

    Avik-Jain/100-Days-Of-ML-Code

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    This project is a structured educational curriculum designed to guide developers through the fundamentals of machine learning. It functions as a technical skill builder, offering a curated roadmap of progressive coding challenges that cover core algorithms, statistical concepts, and essential data science libraries. The repository distinguishes itself through an iterative sequencing of content, organizing complex technical topics into a daily progression that facilitates incremental mastery. It integrates third-party academic lectures and educational resources to provide necessary theoretical

    100-days-of-code-log100daysofcodedeep-learning
    Vezi pe GitHub↗51,254
  • awesomedata/awesome-public-datasetsAvatar awesomedata

    awesomedata/awesome-public-datasets

    75,979Vezi pe GitHub↗

    This project is a community-maintained, open-access directory of high-quality public datasets. It serves as a centralized reference point for researchers, developers, and data scientists to locate reliable information sources across a wide spectrum of industries and scientific fields. By providing a structured index, the repository facilitates the discovery of data necessary for exploratory analysis, machine learning model training, and the development of data-intensive applications. The directory distinguishes itself through a lightweight, platform-agnostic approach to resource indexing that

    aaron-swartzawesome-public-datasetsdatasets
    Vezi pe GitHub↗75,979
  • andrewharmellaw/wardley-maps-bookAvatar andrewharmellaw

    andrewharmellaw/wardley-maps-book

    306Vezi pe GitHub↗

    This is an Asciidoc book of Simon Wardley's "Wardley Maps". It simply takes all his medium posts and joins them together for ease of reading. The intention is to be entirely faithful to the original posts - I've not even fixed the few spelling mistakes - while allowing various output versions to…

    Vezi pe GitHub↗306