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Stock Market Predictive Analytics AI

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placeKE home_workRemote assignmentContract publicAggregated job · KE

eventPublished on Sep 19, 2026 · verifiedWe confirmed on Sep 19, 2026 that it's still live

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US$ 15 – US$ 25 per project

About the job

I need a compact yet accurate predictive-analytics engine that focuses exclusively on stock-market behaviour. The goal is to ingest historical price data, basic fundamentals and real-time market feeds, then return probability-based forecasts for short- and medium-term price movement. You are free to choose the modelling approach—classical time-series, machine-learning ensembles, or deep-learning (e.g., LSTM, Transformer)—as long as the final model outperforms a naïve benchmark and can be retrained with fresh data. Python is preferred because I already license data through a Python API, but I’m open to R or Julia if you can wrap it in a simple REST endpoint. To keep scope clear, here is what I expect as concrete deliverables: • Data-preparation script that cleans and aligns OHLCV, splits train/validation/test, and logs data quality issues. • Reproducible model notebook or .py file with well-commented code, hyper-parameter settings and evaluation metrics (MAE, RMSE, Accuracy on directional move). • A lightweight API or CLI that takes a ticker symbol and date range as input and returns the forecast plus confidence score. • Short README explaining installation, retraining and expected hardware requirements. I’ll provide sample tickers and the data-vendor credentials once we agree on an approach. Your proposal should briefly outline the modelling technique you favour and a timeline for first results; code style and clarity will be part of the acceptance criteria.

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