Flow of a store chatbot: question, retrieval from catalogue and policies, answer with product cards, grade, content fix
Chatbot fundamentals
159 views

Nine techniques that move a store chatbot from "answers something" to "answers correctly": grounding every reply in retrieved content, structuring the catalogue so attributes are findable, writing policy pages a retriever can use, steering with quick replies, handover rules, per-language testing, coupon conditions, guardrails on prices and promises, and a 30-question quality loop you re-run after every content change.

Store chat widget answering whether a backpack is waterproof, with a product card showing price and stock
Chatbot fundamentals
1,016 views

An AI chatbot for ecommerce answers shoppers from your own catalogue, policies and order data instead of from scripts. This guide explains how it differs from rule-based bots, live chat and generic AI chat, what it reads, what it does in a conversation, what it cannot do, how it installs on each platform, what it costs, and how to judge one in a ten-question trial.

Pipeline of a RAG chatbot: question, retrieval over your content, generation from the passages, answer or a decline
Chatbot fundamentals
617 views

A RAG chatbot answers in two steps: it retrieves the passages of your own content that match the question, then writes an answer from those passages only, declining when nothing matches. This guide walks one question through both steps, explains chunks, embeddings and keyword search in plain words, lists the ways retrieval still fails on a real store and the content fix for each, and shows how to test it.

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