Customer Service / Customer Support Live
Technical Issue Diagnosis
Read the diagnostic export a customer sent in alongside what they reported, and work out what the evidence actually shows — separating what the logs prove from what the symptom merely suggests.
About the Agent
Challenges Technical Issue Diagnosis addresses
Done by hand, customer support means gathering what the customer reported, diagnostic export or log and environment, working through 3 separate passes over the same material, then producing what the evidence points to, next steps and candidate causes. None of it is difficult and all of it is exacting, which is the combination people are worst at holding. The errors that matter are the ones a tired reader does not notice, and they surface later — in a reconciliation, or in somebody’s reply. It waits until someone remembers it, which is usually the point at which it has become urgent. As volume grows the work does not get harder, only longer, and the first thing to go is the checking.
Technical Issue Diagnosis runs that same sequence end to end and returns the result as structured artefacts. What it cannot settle it hands over rather than guesses at, and your correction is kept: it asks “Was this the right read of the log?” after every run, and those answers become the set it is measured against. Nothing that moves money, alters a contract or reaches a customer executes without human approval, and every action is written to an audit log. The gain is in the volume that no longer has to be read, not in removing the judgement.
How it works
Step 1: Reading the diagnostic export
First of 3. It works from what the customer reported, diagnostic export or log and environment and feeds the step after it.
Key Tasks:
- Locating the material: It works from what the customer reported, diagnostic export or log and environment, so nothing has to be forwarded, re-keyed or renamed first.
- Handling the format it arrives in: Scanned pages, native documents, spreadsheets and message bodies are all read the same way, including layouts where the relevant figure sits inside a table rather than a labelled field.
- Pulling the fields that matter: Only the fields the rest of the run needs are extracted. What cannot be read confidently is recorded as unread rather than filled in with a best guess.
Outcome:
- Fields extracted: The fields are available to the steps that follow, with anything unreadable listed rather than silently defaulted — which is what stops a bad extraction becoming a confident wrong answer three steps later.
Step 2: Working out what the evidence shows
Step 2 of 3. It takes what step 1 produced and hands its result to step 3.
Key Tasks:
- Working from the run so far: This step takes what step 1 produced and carries it toward step 3.
- Following the same rules each time: The behaviour is configuration rather than judgement made fresh per run, so customer support is handled the same way every time.
- Surfacing what it cannot settle: Anything ambiguous is passed on as ambiguous rather than resolved silently.
Outcome:
- Passed on: The result passes to the next step, with anything unresolved carried forward as an open item rather than dropped.
Step 3: Writing the next steps
Last of 3. It takes what step 2 produced and produces what the evidence points to and next steps.
Key Tasks:
- Writing from the run, not from a template: The text is built from what this run actually found, so two customer support outputs differ where the underlying records differ.
- Leading with what needs a decision: The exceptions come first and the routine detail follows, because the reader is deciding rather than reading.
- Staying inside the evidence: Nothing appears in the text that is not supported by a record the run examined. Gaps are stated as gaps.
Outcome:
- Artefact ready: A finished artefact, traceable line by line to the records behind it, ready for a person to accept or correct.
Step 4: Your review, and what it changes
The run ends with a person, not with a result being filed.
Key Tasks:
- Asking a specific question: It asks “Was this the right read of the log?” rather than for a rating. A question about this run is answerable; a score out of five is not.
- Keeping the correction: What you change is recorded against the case that produced it, so the disagreement is retrievable rather than absorbed.
- Building the evaluation set: Those cases become what the agent is measured on. It is scored against your judgement rather than against a general benchmark.
Outcome:
- A measured agent, not an assumed one: The cases Technical Issue Diagnosis handles well and the cases it does not are both visible, and the second list is the one that decides what changes. Nothing is retrained silently on the back of a single correction.
Why use Technical Issue Diagnosis?
- Checks are evidenced, not asserted: Each check records what was expected and what was found. A failure can be understood — and argued with — without re-running anything.
- A batch is one run, not a hundred: It works the whole set in a single pass and returns a row per item with its verdict, so the volume that needs no attention never has to be opened.
- Takes documents as they arrive: Scanned pages, native files and awkward layouts are read as they are. Nothing has to be renamed, re-keyed or converted into a template before a run.
- Corrected by the people using it: After each run it asks “Was this the right read of the log?”. Those answers become the evaluation set, which means it is measured against your judgement rather than ours.
- Reads and reports, does not act: It returns a result for review rather than writing changes back on its own. Anything that moves money, alters a contract or reaches a customer needs human approval first.
Oversight
Runs under scoped, least-privilege credentials with every action written to an audit log. Anything that moves money, alters a contract or reaches a customer requires human approval before it executes.
Customer Support
Other agents in customer support
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Track every open complaint against the commitments made to that customer — which are past the promised date, which have gone quiet, and which were closed without the customer ever agreeing they were.
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Check the published FAQ against what agents are actually replying, and find the entries that have quietly gone out of date as well as the questions that were never added.
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Work out how much of last month's inbound could already have been answered by the help centre, which articles were missing, and which questions should never be deflected at all.
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Draft a publishable article from a resolved case, checked against the existing knowledge base first so it extends what is there instead of quietly contradicting it.
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Next Step
Deploy Technical Issue Diagnosis, or adapt it
It runs as-is. Most deployments diverge — a different source system, a different tolerance, a different approval path. A 30-minute technical call establishes which.