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service-itsm-agentic-setup-cmdb-configure

Enable the CMDB (Configuration Management Database) feature in Service Cloud ITSM against a production or sandbox org: verify the CMDB org SKU, prov…

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技能内容

Enable the CMDB Feature (Service Cloud ITSM)

Takes an org from "CMDB off" to "CMDB feature enabled" by walking the first three layers of the

CMDB prerequisite stack in order. Every call runs through the **Salesforce-hosted Headless-360 MCP

server** (server key headless-360) via its four meta-tools (discover, describe,

dispatch_readonly, dispatch). The org is derived from the OAuth JWT bound to the current MCP

session — the skill never handles an org id, alias, or credentials — so this works identically

against production and sandbox with no per-user MCP install.

This skill covers Layers 0–2. User access (Layer 3) and content bundles (Layer 4) are separate

skills — see the end of this file.

The gate this skill lifts

Every CMDB Connect API checks:

orgHasCMDBEnabled = orgHasCMDBPermission (org perm ITSrvcsCnfgMgmnt)  &&  OrgPreferences.CMDBEnabled

Until orgHasCMDBEnabled is true, CMDB APIs return 403 FUNCTIONALITY_NOT_ENABLED. CMDBEnabled

is NOT a directly settable preference — it is flipped as a side effect of enabling the feature in

Layer 2. This skill's job is to make that gate return true.

> Necessary but not always sufficient for a given user. Lifting this org gate does not by itself

> let a specific user read CMDB data. Some CMDB reads (e.g. bundleListView) also enforce

> user-level CMDB access and return the same 403 FUNCTIONALITY_NOT_ENABLED ("not enabled for

> this user") when the running user holds no CMDB permission sets — even though the feature is

> correctly ENABLED. That is Layer 3 (service-itsm-agentic-setup-cmdb-access-assign), not a failure

> of this skill. Confirm this skill's success via the feature status == ENABLED, never via a CMDB

> data read.

Scope

  • In scope: verifying the CMDB org permission (Layer 0), triggering + polling ITOM tenant

provisioning (Layer 1), pre-checking + enabling + verifying the CMDB feature (Layer 2).

  • Out of scope: permission-set assignment (Layer 3 — service-itsm-agentic-setup-cmdb-access-assign),

bundle installation (Layer 4 — service-itsm-agentic-setup-cmdb-bundle-deploy), CMDB record CRUD,

Discovery / Service Graph Connector, identification rules.

Mechanism

All operations dispatch through headless-360 MCP tools. Reads go through

mcp__headless-360__dispatch_readonly, writes through mcp__headless-360__dispatch — both take raw

HTTP: {"url": "<path>", "method": "GET|POST", "body"?: {...}, "queryParams"?: {...}}not

{operation_id, arguments}. See references/mcp-invocation.md for the exact url / method /

body of every call. The four tools:

  • mcp__headless-360__discover — semantic search over the indexed operation catalog. The Setup/Connect

routes this skill uses are not always ranked first (or indexed), so a miss does not mean the

route is absent — dispatch the exact path directly (see references/mcp-invocation.md).

  • mcp__headless-360__describe — pull the full input schema and canonical route before any POST.
  • mcp__headless-360__dispatch_readonly — the dispatcher for every read (GET).
  • mcp__headless-360__dispatch — the dispatcher for every write (POST/PATCH).

The skill never handles credentials — the org is bound to the current OAuth session. If a dispatch*

call returns an auth error, tell the user to re-authenticate the headless-360 MCP connection (and

confirm the session points at the intended org), then stop.


Clarifying questions

Ask only what you cannot infer from conversation:

  • Which org? Confirm the target org and state plainly that this org will be modified

(tenant provisioning and feature enable are writes). For production, get explicit confirmation.

Do not re-ask for anything the user already provided; pre-populate and note "(from conversation)".


Workflow

All steps are sequential and gated — do not advance past a failed layer. Always read before you

write: run the read-only check before every mutation.

Layer 0 — Verify the CMDB org SKU (read-only, hard gate)

CMDB requires the org permission ITSrvcsCnfgMgmnt, granted only by edition / license / org

template. No API can set it. The most reliable, universally-available way to verify the org

carries the CMDB SKU is to probe for the CMDB permission-set license — it exists only in orgs

provisioned with that license:

dispatch_readonly({ "url": "/services/data/v63.0/query", "method": "GET", "queryParams": { "q": "SELECT Id FROM PermissionSetLicense WHERE DeveloperName = 'ItSrvcCnfgItmReadPsl'" } })
→ totalSize == 1  (licensed)   |   totalSize == 0  (not licensed)
  • totalSize == 1 → org is CMDB-licensed; proceed to Layer 1.
  • totalSize == 0 → STOP. Tell the user in plain language (no developer names or API references

in the message they see):

> This org isn't licensed for CMDB. CMDB availability is determined by the org's edition or

> license and can't be turned on through setup — it has to be included when the org is

> provisioned. Please have the org set up with CMDB (or use one that already has it), then run

> this again.

The core Connect API GET /services/data/v63.0/setup/org/permissions/ITSrvcsCnfgMgmnt

({"isPermissionEnabled": true|false}) is an alternative, but it **404s on some org types

(including orgfarm test orgs)**, so prefer the PSL probe above. See

references/mcp-invocation.md for the details. If no probe resolves, report that the org perm could

not be verified and ask the user to confirm the org has CMDB licensed before continuing.

Layer 1 — Provision the ITOM tenant

CMDB runs on an ITOM tenant that must reach status PROVISIONED (asynchronous).

  1. Check current status (read):
   dispatch_readonly({ "url": "/services/data/v67.0/connect/tenantProvisioningStatus", "method": "GET" })

Branch on status:

  • PROVISIONED → already done; skip to Layer 2 (no trigger, no poll).
  • UNPROVISIONED → no job has run; go to step 2 and trigger it. Do not wait or poll on

this state — waiting never starts provisioning and just burns the budget.

  • PROVISIONING_IN_PROGRESS → a job is already running; skip the trigger and go straight to

the poll in step 3.

  • FAILED → treat as the FAILED case in step 3 (surface the reason; do not retry via API).
  1. Trigger provisioning (write) — only when step 1 showed UNPROVISIONED. Confirm with the

user first:

   dispatch({ "url": "/services/data/v67.0/connect/tenantProvisioningStatus", "method": "POST" })

After the trigger returns, tell the user provisioning has started and **typically takes 2+

minutes**, so there is nothing to check yet.

  1. Poll the GET until status == PROVISIONED. This is async and reliably takes 2+ minutes

(measured completion clusters right around ~2 min 40 s), so an immediate poll is a guaranteed

no-op. Anchor all timing on the response's triggeredAt, not on when this run started — the

job may have been triggered by an earlier run (the PROVISIONING_IN_PROGRESS entry from step 1).

Parse triggeredAt as a UTC epoch and compute elapsed = max(0, now − triggeredAt) — clamp to

≥ 0 so a clock skew (or a server-vs-agent timezone mismatch) can't yield a negative elapsed

(waits forever) or a false timeout. If triggeredAt is missing or unparseable (the trigger

POST response may not have populated it yet, or an in-progress row from an earlier run may omit

it), fall back to anchoring on this run's start — treat elapsed = 0 and wait the full ~2-min

floor, so a branch always fires deterministically. Then:

  • elapsed < ~2 min → wait until ~2 min after triggeredAt before the first check (skips the

guaranteed-useless early polls), then poll every 30 seconds.

  • ~2 min ≤ elapsed < 10 minpoll immediately (the initial wait has already passed — do not

wait a fresh 2 min), then every 30 seconds.

  • elapsed ≥ 10 mindo not start a fresh wait; treat it as the timeout case below (report

the last-seen status and let the user decide).

The overall budget is 10 minutes from triggeredAt (≈16 checks after the ~2-min floor). The

~2-min floor is a floor, not an extra delay — it brackets the typical ~2:40 completion within a

poll or two; do not stretch it longer. Do not poll during the initial wait. Exit the loop as soon

as:

  • status == PROVISIONED → success, advance to Layer 2.
  • status == FAILED → stop immediately. Do NOT retry via the API — surface the failure to the

user in plain language with three things:

  1. The failure reason, decoded to human-readable text. Read it from the response body (the

FAILED payload carries a detail field such as error / failureReason / message

unescape any HTML entities like &lt;/&gt; and strip markup). If the response carries no

detail, say the tenant provisioning failed without a returned reason.

  1. A link to the org's tenant provisioning Setup page, built from the target org's instance

URL: <org instance URL>/lightning/setup/CMDBProvisionalSettings/home.

  1. Ask the user to open that page and try provisioning manually, then re-run this skill once

the tenant shows PROVISIONED. Only if the manual retry also fails does it need Salesforce

support.

  • the 10-minute window elapses → stop, report the last-seen status, and let the user decide

whether to keep waiting (re-run) or investigate. Never spin past the 10-minute bound.

Polling in the background (runtime-permitting). Provisioning is a multi-minute wait, so the

user should not have to sit idle. **If — and only if — the executing runtime supports backgrounded

work** (e.g. an agent runtime that can spawn a detached sub-agent or a scheduled wake-up), delegate

the wait-then-poll loop to a background task so the user can keep working, and report the outcome

(PROVISIONED / FAILED / timed-out) when it finishes. If the runtime is a single-threaded turn

(the ADK / Agentforce / headless-360 production path is single-threaded — a poll loop blocks the

conversation there), poll inline instead. Either way: (a) tell the user up front it takes a few

minutes, and (b) give a resume path — if they step away and the turn ends, they can re-run this

skill and Layer 1 picks up from the current status (an already PROVISIONED tenant skips straight

to Layer 2). Never require a background primitive the runtime may not have.

Layer 2 — Enable the CMDB feature (this lifts the 403 gate)

The feature api name is service-cloud-itsm-cmdb-integration.

  1. Pre-check status (read):
   dispatch_readonly({ "url": "/services/data/v67.0/connect/setup/discovery/feature/service-cloud-itsm-cmdb-integration/status", "method": "GET" })
  • status == ENABLED → already done; skip to verification.
  • status == NOT_ENABLED with enableBlockedReasons: [] → clear to enable.
  • enableBlockedReasons non-empty → STOP and relay each reason to the user in plain language

(these are prerequisites the org still needs — do not attempt the enable).

  1. Confirm with the user, then enable (write):
   dispatch({ "url": "/services/data/v67.0/connect/setup/discovery/feature/service-cloud-itsm-cmdb-integration/enable", "method": "POST", "body": {} })
   → {"success": true}
  1. Verify (read) — do NOT trust the POST response alone:
   dispatch_readonly({ "url": "/services/data/v67.0/connect/setup/discovery/feature/service-cloud-itsm-cmdb-integration/status", "method": "GET" })
   → expect status == ENABLED

status == ENABLED is the definitive — and only — confirmation this skill needs. Layer 2

succeeds or fails on this check alone; it does not perform any CMDB data read to confirm the

gate. A CMDB data read (e.g. bundleListView) also depends on the running user's own CMDB

access, so it cannot cleanly confirm the org-level enable — see the note under "The gate this

skill lifts". Once the feature shows ENABLED, Layer 2 is done.


Rules / Constraints

| Constraint | Rationale |

|-----------|-----------|

| Verify Layer 0 before anything else | If ITSrvcsCnfgMgmnt is off, no later step can succeed — fail fast with a clear message |

| Never try to set ITSrvcsCnfgMgmnt via API | There is no setter; it is license/edition/template only |

| Never set CMDBEnabled directly (e.g. via updateDefaultOrgPrefs) | It is not in any settable-pref allowlist; the server rejects it with 500. It flips only as a side effect of the Layer 2 feature enable |

| Read before every write; verify after every write | Tenant + feature are async/stateful; the POST response can lag the real state |

| Confirm the target org and each write with the user | These are real, hard-to-reverse changes on a live org |

| Do not advance past a failed or blocked layer | Later layers depend on earlier ones and will 403 |

| Anchor poll timing on the response's triggeredAt (parse as UTC epoch; elapsed = max(0, now − triggeredAt)), not on this run's start; ~2-min floor before the first check, then every 30s, 10-min total budget from triggeredAt. If triggeredAt is missing/unparseable, fall back to this run's start (elapsed = 0) | Provisioning reliably takes 2+ min (measured ~2:40), so earlier polls are guaranteed no-ops. A PROVISIONING_IN_PROGRESS entry may have been triggered by an earlier run — if already past the ~2-min floor, poll immediately; if already past 10 min, report a timeout rather than waiting a fresh 2 min. Clamp elapsed to ≥ 0 so clock skew / timezone mismatch can't wait forever or false-timeout; the fallback keeps a branch firing when the timestamp is absent. Never spin past the 10-min bound |

| Background the poll loop only where the runtime supports it; else poll inline — never require a background primitive | The user shouldn't sit idle for a multi-minute wait, but the production headless-360/ADK path is a single-threaded turn; a skill that mandates a background poller breaks there. Always give a re-run resume path |

| On FAILED, never retry via API — decode the reason, give the Setup URL, ask for a manual retry | The API trigger has already failed; the user can retry from the CMDB provisioning Setup page, which surfaces the real error and any manual remediation |

| Never expose internal jargon to the user | Keep record IDs, org IDs, HTTP status codes (403/500/…), API error codes (FUNCTIONALITY_NOT_ENABLED, …), endpoint names (bundleListView, tenantProvisioningStatus), developer names (ITSrvcsCnfgMgmnt, CMDBEnabled), and tooling internals (dispatch, headless-360) out of user-facing output. Translate to plain language; use human-readable names and statuses |


Verification checklist

  • [ ] Layer 0: ITSrvcsCnfgMgmnt confirmed true (or stopped with a clear license message)?
  • [ ] Layer 1: tenant status == PROVISIONED?
  • [ ] Layer 2: pre-check showed enableBlockedReasons: [] before enabling?
  • [ ] Layer 2: enable returned success: true?
  • [ ] Layer 2: verification GET shows status == ENABLED? (this is the sole success criterion — no CMDB data read is used to confirm)
  • [ ] Confirmed the target org and each write with the user first?

Output expectations

CMDB Feature Enable — Complete (via service-itsm-agentic-setup-cmdb-configure)

Target org: <org>

  CMDB license .................. Present
  ITOM tenant ................... Provisioned
  CMDB feature .................. Enabled

CMDB is now enabled on this org. Next steps:
  • Assign user access  → service-itsm-agentic-setup-cmdb-access-assign
  • Install base bundle  → service-itsm-agentic-setup-cmdb-bundle-deploy

Keep internal jargon out of user-facing output (no record IDs, HTTP status codes, error codes,

endpoint or developer names). If any step fails, stop and tell the user — in plain language — which

part of setup didn't succeed and what it means for them, then point to the relevant fix. Translate

any raw error (e.g. a 403 or FUNCTIONALITY_NOT_ENABLED) into what it means ("CMDB isn't enabled

yet"), rather than echoing the code.


Common failures (surface these in plain language)

| Symptom | Likely cause | What to tell the user |

|---------|--------------|-----------------------|

| Layer 0 returns false | Org lacks the CMDB SKU | License/edition prerequisite — no API can grant it; provision the org with CMDB |

| 403 FUNCTIONALITY_NOT_ENABLED on CMDB reads while feature status != ENABLED | Feature not yet enabled (Layer 2 incomplete) | Finish Layer 2; the gate lifts only after the feature is ENABLED |

| 403 FUNCTIONALITY_NOT_ENABLED on bundleListView while feature status == ENABLED | Feature IS enabled; the running user lacks CMDB permission sets (bundleListView also enforces user-level access) | Not a Layer 2 failure — this is Layer 3; run service-itsm-agentic-setup-cmdb-access-assign to grant the user CMDB access |

| Feature enable blocked (enableBlockedReasons non-empty) | Missing dependency the org still needs | Relay each reason; resolve those first, then retry |

| Tenant stuck UNPROVISIONED / PROVISIONING_IN_PROGRESS / long-running | Provisioning is async | It typically takes ~2–3 min; keep polling within the 10-min budget or retry the trigger |

| Tenant FAILED | Provisioning job failed Salesforce-side | Share the decoded failure reason + the org's /lightning/setup/CMDBProvisionalSettings/home link and ask the user to retry provisioning manually there; escalate to Salesforce support only if the manual retry also fails |

| dispatch* auth error | headless-360 MCP session not authenticated / token expired | Re-authenticate the headless-360 MCP connection and confirm the session points at the intended org |


Reference file index

| File | When to read |

|------|--------------|

| references/mcp-invocation.md | Exact dispatch* url/method/body for every Layer 0–2 call, response envelopes, and error table |

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