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Design a fraud-detection system that uses LLMs (beyond a classic ML classifier).

The trap is swapping the classifier for an LLM. The real-time, imbalance, and adversarial constraints stay put. The signal is a hybrid: a fast calibrated model scores inline, LLMs investigate the gray zone off the hot path.

Updated Sep 2026 · Grounded in real GenAI, LLM, and AI/ML engineering interview loops and written to a senior-engineer editorial bar.

The trap is swapping the classifier for an LLM. The real-time, imbalance, and adversarial constraints stay put. The signal is a hybrid: a fast calibrated model scores inline, LLMs investigate the gray zone off the hot path.

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