Quant Developer Required – Semi-Automated Indian Equity Trading System
Bütçe: $500.0
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automation, api-integration, python, machine-learning, api, artificial-intelligence, forex-trading
## Quant Developer Required – Semi-Automated Indian Equity Trading System
We are seeking an experienced quantitative developer to build and validate a semi-automated trading system for NSE equities.
The objective is to create a disciplined system that identifies trading opportunities, evaluates them using quantitative and AI-assisted checks, calculates risk and presents the final trades for human approval.
### Initial Scope
* Develop and validate one intraday strategy and one swing-trading strategy.
* Define clear entry, exit, stop-loss and position-sizing rules.
* Backtest the strategies using reliable Indian market data.
* Include realistic brokerage, STT, GST, exchange charges and slippage.
* Conduct out-of-sample and walk-forward testing.
* Build a scanner that provides:
* Stock and strategy name
* Entry level
* Stop-loss and target
* Risk-reward ratio
* Suggested position size
* Reason for selection
* Conditions that would invalidate the trade
* Create a simple dashboard or Telegram-based interface.
* Enable paper trading and maintain complete signal and trade logs.
* Integrate with FYERS or another suitable broker API after successful validation.
### AI-Assisted Review Layer
The system should include an AI-assisted validation step before a signal is presented to the trader.
The review should consider:
* Overall market trend
* Sector strength
* Price and volume behaviour
* Liquidity and volatility
* Risk-reward quality
* Event or news risk
* Conflicting technical signals
Each opportunity should be classified as:
* Qualified
* Watchlist
* Rejected
The system must provide a brief reason for the classification. AI should support decision-making and must not independently execute trades.
### Risk Controls
* Maximum risk per trade
* Maximum daily loss
* Maximum open positions
* Maximum sector exposure
* Duplicate-order protection
* Stale-data and API-failure protection
* Emergency stop or kill switch
### Required Deliverables
* Strategy-rules document
* Python source code
* Data and backtesting module
* Backtesting and validation report
* Signal scanner
* AI-assisted review module
* Dashboard or Telegram interface
* Paper-trading module
* Risk-management controls
* Installation and operating guide
* Source-code handover and demonstration
### Project Stages
**Stage 1:** Strategy definition and architecture
**Stage 2:** Backtesting and independent validation
**Stage 3:** Scanner, AI review and dashboard
**Stage 4:** Paper trading and performance review
**Stage 5:** Optional broker integration after approval
Payment will be milestone-based. Progression to each stage will depend on satisfactory completion and validation of the previous stage.
### Applicant Requirements
Applicants must demonstrate experience in:
* Quantitative strategy development
* Python-based trading systems
* Indian equity markets
* Backtesting without look-ahead bias or data leakage
* Walk-forward and out-of-sample validation
* Broker API integration
* Trading risk-management systems
Please include:
* Relevant previous projects
* Sample backtesting reports or dashboard screenshots
* Your proposed approach
* Recommended data and broker API
* Milestone-wise quotation
* Confirmation of complete source-code ownership and handover
Generic applications or guaranteed-return claims will not be considered.
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