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@IteraLabs

IteraLabs Research

Infrastructure for Financial Markets Research

iteralabs

At Iteralabs we believe in one core principle: To achieve consequential engineering results, science goes before hype.

“Most people use statistics like a drunk man uses a lamppost; more for support than illumination” ― Andrew Lang

And thus, we focus on statistical soundness and parametric stability for the models we use, with this hierarchical sourcing of knowledge: statistical learning > machine > large heuristics learning (Generative AI, which we could use, even daily, but as an optional tool not as a protagonistically, for-its-own-sake goal).

Problem space

  • Classical ML OnChain Computation.
  • DeFi Market Making, Order Routing and Risk Modeling.
  • Synthetic Data Generation (OffChain, and, OnChain).

Core Methods

  • Classical ML and Quantitative Finance.
  • Distributed Convex Optimization Models.
  • Financial timeseries inner-pattern recognition (subsequential clustering).

Projects

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  1. aetelier-sdk aetelier-sdk Public

    Rust engine for high-frequency market-microstructure data: 12-venue live connectivity, verified order-book reconstruction, grid synchronization, and columnar Parquet I/O

    Rust 1

  2. .github .github Public

    Public Profile Content

  3. citop citop Public

    Terminal UI and other Tools for self-hosted CI jobs running on small devices

    Rust

  4. delorian-rs delorian-rs Public

    Data context time traveler and re-player

Repositories

Showing 4 of 4 repositories

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