
In a clear and practical video, Leila Gharani [MVP] warns viewers to stop the common practice of simply uploading Excel workbooks to ChatGPT without safeguards. She demonstrates how a messy sales file with coded transactions and no formulas can mislead an AI if you do not prepare the data first. Consequently, she advocates for a workflow that verifies context, checks integrity, and uses built-in tools instead of a blind upload.
Gharani uses a deliberately difficult sales workbook to show where things go wrong: transaction rows contain only codes, while product names, locations, and costs sit on separate master sheets. As a result, any analysis must first join tables and reconstruct missing formulas instead of relying on pre-existing calculations. Therefore, she stresses that trusting an immediate answer from an AI without inspection can produce wrong or misleading results.
Before letting the AI change anything, Gharani applies a set of guardrail prompts and instructs the model to inspect the workbook for problems like missing values, duplicate records, and hidden sheets. Then, she runs three simple checks to confirm that the AI understands table joins, aggregation, and lookup logic, which helps reveal whether the model truly parsed the data. Moreover, these initial steps reduce the risk that the AI will produce confident but incorrect outputs.
Next, she asks the model to perform a store versus online sales breakdown by region and compares the result to her own Power Pivot data model to confirm accuracy. Following that, she requests a profit margin analysis that requires pulling cost figures from another sheet and having the AI compute margins by product, showing how multi-sheet joins should work in practice. Finally, she poses a question the workbook cannot answer to see if the AI will invent data, testing whether the model will hallucinate or admit missing information.
Beyond the specific tests, Gharani highlights a broader change: embedding AI directly into Excel rather than uploading files to an external chat window. She points out that an integrated add-in, such as ChatGPT for Excel, can work with live formulas, cell references, and data ranges inside your workbook, which avoids repeated uploads and keeps analysis current. In addition, built-in integration helps maintain enterprise controls and reduces the risk of exposing sensitive data outside the Microsoft environment.
Of course, embedding AI into Excel brings tradeoffs. On one hand, live integration improves accuracy and security and allows the model to reference existing formulas, yet on the other hand it requires careful governance, version control, and user training to prevent accidental model-driven changes. Moreover, relying on automated joins and formula generation still demands strong human oversight: errors in table relationships, hidden sheets, or ambiguous codes can propagate through an automated workflow if you do not validate results.
Gharani’s practical recommendations emphasize a balanced approach: use initial inspection prompts, run simple verification checks, and cross-check AI outputs with trusted models like Power Pivot and DAX measures. Furthermore, she suggests documenting assumptions and keeping a clear audit trail, since this makes it easier to find the source of discrepancies when numbers do not match expectations. By combining human expertise with AI assistance, teams can reduce the chance of costly mistakes while benefiting from automation.
In summary, the video offers a timely and actionable message for analysts and finance teams: do not treat AI as a black box, and do not upload raw workbooks without checks. Instead, implement guardrails, verify simple counts and joins, and prefer integrated tools that work with live spreadsheets to maintain security and data integrity. Ultimately, Gharani’s workflow highlights that careful preparation and validation remain essential even as AI capabilities grow more powerful.
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