entrascope
Observability and diagnostics for Microsoft Entra ID and Azure Monitor, helping engineers troubleshoot authentication and authorisation failures.
Entra directory operations do not appear in the Azure subscription activity log. They are recorded in the Entra audit logs, under the category ApplicationManagement. entrascope reads them through Microsoft Graph and through Azure Monitor.
What it does
- Diagnosis.
investigategathers credentials, directory changes and sign in failures, applies a set of rules and ranks what it finds worst first, with the remediation for each. Tenant wide, or narrowed to one application. - Inspection.
inspectshows one application in full: the registration and the enterprise application together, what it exposes, what it asked for against what was consented, every URL, and its credentials. - Identity.
whoamisays which tenant and identity you are querying as, what the token actually grants, the directory roles held and the conditional access policies in force. - Readiness.
doctorreports the network path, the credential file, the licence tier and every diagnostic category, each failure with its remediation. - Discovery. Enumerate application registrations and enterprise applications of every type, and project sign in audience, redirect URIs, requested and granted permissions, owners, credentials and their expiry, federated identity credentials, SAML configuration and the assignment requirement.
- Log interrogation. Read Entra audit logs, interactive and non interactive user sign ins, service principal and managed identity sign ins, Microsoft Graph activity and provisioning logs.
- Error explanation. Map AADSTS and Microsoft Graph error codes to meaning, likely cause and remediation, with no credentials needed.
Three surfaces, one core
| Surface | Transport | Authentication |
|---|---|---|
| Command line | local | credential file, environment, Azure CLI or DefaultAzureCredential |
| Local MCP server | stdio | the same, no OAuth |
| Remote MCP server | Streamable HTTP | OAuth 2.1 resource server validating Entra tokens |
Installation
pip install entrascope
On a Python that Homebrew or your distribution manages, pip will refuse, and
it is right to. Use one of these instead:
pipx install entrascope # or
uv tool install entrascope # or
python3 -m venv ~/.venvs/entrascope && ~/.venvs/entrascope/bin/pip install entrascope
Staying current
entrascope checks for a newer version at most once a day, never blocking a
command, and says one line on standard error when there is one. Set
ENTRASCOPE_NO_UPDATE_CHECK=1 to switch it off.
entrascope upgrade --check # what is running, what is newest, what would upgrade it
entrascope upgrade # upgrade the way this copy was installed
It works out whether it is in a virtual environment, under pipx, under uv, or
in a Python something else manages, and uses the right command through the
running interpreter rather than whichever pip is on the path. On a managed
Python it refuses and shows the safe routes, with
--break-system-packages there if you decide otherwise.
From a clone, for development:
python3.14 -m venv .venv && .venv/bin/pip install -e ".[dev]"
Authentication
The quickest route needs nothing but an Azure CLI session. No flag, because that session is tried automatically when there is no credential file:
az login
entrascope doctor
For unattended use, place client credentials at
~/.entra/provisioner-credentials.json with the keys ClientID, Secret and
TenantID. The file must be mode 0600 inside a directory of mode 0700, and
entrascope refuses to run otherwise.
One file per tenant is ordinary, so the file can be named:
entrascope --credentials provisioner-credentials-stage.json doctor
export ENTRASCOPE_CREDENTIAL_FILE=provisioner-credentials-stage.json
A bare name is a file inside ~/.entra; a path is used as given. Naming one
means the file source, so --auth is not needed as well. When the expected
file is absent, entrascope lists the ones that are there rather than repeating
the name it wanted.
A credential file that is present but unsafe stops the command rather than
being worked around, and prints the exact chmod. Leaving it readable by
others while quietly authenticating some other way is not a kindness. A file
that is simply absent is passed over, and any later failure says which identity
answered and what was passed over to reach it.
Using it
Run entrascope with no arguments and it tells you what it can do, then offers
the commands to choose from. Every group does the same, and every command
carries its own help and worked examples. Piped or in a script, all of them
print their help and exit, so nothing that automates this changes.
Terminology, used the same way throughout
| Term | Meaning |
|---|---|
| application registration | what you register in Entra, the definition |
| enterprise application | the service principal, the instance in a tenant |
| delegated permission | acts as a signed in person, a scp claim |
| application permission | acts as itself, a roles claim |
Knowing where you stand
entrascope whoami # which tenant, which identity, what it may do
entrascope doctor # can entrascope see what it needs
whoami answers the question every diagnosis starts with and most people get
wrong: the tenant by name and identifier, the tenants this identity can reach,
the permissions the token actually carries, the directory roles held, the
administrative units that bound them, and the conditional access policies in
force.
Looking at applications
Listing applications and reading one of them are the same question asked at two depths, so they are one command.
entrascope inspect # choose from a list, with / to search
entrascope inspect saml2 # by name
entrascope inspect d6bdb5c4-1722-4c63-930f-fa264d4778bc
entrascope inspect --type managed-identity
entrascope inspect applications # the whole list as a table
entrascope inspect enterprise-apps
Shows the registration and the enterprise application together, as YAML, coloured at a terminal and plain in a pipe: the scopes it exposes, the roles it defines, what it asked for against what was actually consented, who may use it, every URL it is registered with, its credentials and their expiry, and its single sign on configuration.
Consent, and what is missing from it
The permissions.consent section answers the question a permission failure
usually turns on. Each permission the registration asks for is named rather
than left as an identifier, and carries whether only an administrator may
consent to it and whether anybody did.
Three lists say what is wrong, and they say different things:
without_admin_consentnames every permission that needs an administrator and does not have one. Each of these is refused for everybody, andadmin_consent_completeis false while any of them remains.user_consented_onlynames the delegated permissions one person consented to for themselves rather than for the tenant. These work for that person and are refused for everybody else, which is what a failure only one engineer cannot reproduce looks like.not_consentednames everything asked for and never granted at all, including the permissions a user may consent to on their own.
An investigation reports the same two conditions as findings, an error for the first and a warning for the second, so a tenant wide sweep names every application waiting on consent.
Who may use it
The access section is the other half of authorisation, and consent says
nothing about it. It lists the security groups, the users and the applications
assigned to the enterprise application, each with the role it was assigned. A
group is the usual answer and was previously invisible.
Where assignment_required is true, an identity that is not assigned is
refused however much has been consented.
access.member_of lists the groups, directory roles and administrative units
the application's own identity belongs to. Access held that way is granted to
the group rather than to the application, so nothing on the application records
it, and a dynamic group is marked as such because its membership changes
without anybody assigning anything.
On behalf of, SAML and the policies that rewrite a token
exposes.pre_authorized_applications names each client allowed to ask for this
resource's scopes without a consent prompt, and names the scopes it may ask
for. An on behalf of chain runs with nobody present to answer a prompt, so a
client pre authorised for the wrong scope fails exactly like one that is not
pre authorised at all, and only the scope names tell the two apart.
single_sign_on covers what a registration does not show. For SAML that is
which of several certificates actually signs, whether any address is registered
to be warned before it expires, where the service provider begins sign in, the
relay state and the token encryption key. A signing certificate nobody is
warned about ends single sign on for everybody at once, on a date nobody is
watching, so it is a finding of its own.
single_sign_on.policies lists the claims mapping, home realm discovery and
token lifetime policies assigned to the enterprise application. Each rewrites a
token without the registration recording that it does, which is why a token
compared against the registration that produced it can disagree with it. A
claims mapping policy assigned to an application that does not accept mapped
claims is ignored rather than refused, so it looks exactly like a policy that
does not work; that pairing is reported as an error.
provisioning.isFallbackPublicClient is the setting behind two failures that
read as credential problems. A confidential client with it set presents its
secret and is refused with AADSTS700025. A native client without it is refused
with AADSTS7000218 for not sending a secret it cannot hold. Both are findings.
With no argument and a terminal to draw on, it offers the list. Move with the
arrow keys or with j and k, and the arrows keep moving while a search is being
typed. Search with / as in vi, s cycles the order between name, name
reversed, newest and oldest, page up and page down move a screen at a time,
enter opens, escape goes back.
Colour carries meaning rather than decoration: an application whose credential
has expired is red, one expiring soon amber, an OAuth or OpenID Connect
application orange, a SAML application violet. The palette is configuration,
under fields.display.chooser, and it is chosen to be read on a dark terminal.
After showing an application it offers what to do next: back to the list, save that application to a YAML file, or leave. Looking at one application is rarely the whole question.
The list holds names and identifiers only, so it appears at once on a tenant of
several hundred applications; everything else is read for the one that is
chosen. Microsoft first party applications and the managed identities Azure
creates for its own resources are kept out of it, with a count of what was
hidden. --all includes them.
Any command group given no subcommand does the same: it prints its help and then offers its commands, asking for whatever the chosen one cannot do without. The menu comes back after each command rather than returning you to the shell, waiting for a keystroke first so that what the command said stays on the screen to be read and scrolled through. A command that fails says so and the menu returns, as does one that ends with a non-zero exit code, and every menu offers the way out rather than leaving you to guess at it. A prompt for an argument takes a blank answer as going back. Piped or in a script, the help is printed and nothing is offered, exactly as before.
Diagnosing a failure
Start wide, then narrow. investigate gathers credentials, directory changes
and sign in failures, applies a set of rules and ranks what it finds worst
first, with the remediation for each.
entrascope doctor # can entrascope see what it needs
entrascope investigate # what is wrong in this tenant
entrascope investigate --severity error # only what is already broken
entrascope investigate my-api # narrow to one application
entrascope investigate my-api --full # and show the evidence behind it
entrascope investigate --follow # watch it live, newest first
--follow opens a live view rather than a report. The audit log and the sign in
logs stream newest at the top and refresh on their own, coloured by what each
line means: errors red, warnings amber, everything else quiet. Type / and
some words to narrow it, f to cycle the severity floor, p to pause while
you read a line, r to ask again now, q or escape to go back to the menu.
Nothing in it leaves the tool.
Managed identities are left out: Azure signs them in constantly and none of it
is anybody's authentication problem. --kind managed-identity watches them
anyway.
The same failure happening forty times is one line saying forty, timestamped at
the most recent, rather than forty lines saying the same thing. Every line
carries the day, the month, the year, the time to the second and the zone it is
shown in, which is the machine's own zone unless --timezone utc says
otherwise. The tool's own log lines appear in the same list, which is where the
reason for an empty screen belongs.
Findings name both the display name and the application id, because an error message quotes the identifier and never the name, and two applications in a tenant may share a name.
The argument to investigate is an application id, an object id or part of a
display name, whichever the error message gave you. The same value works as
--app on every other command. Findings are ranked error for something
already broken, warning for something that will break, and note for the
context that explains a result.
Looking at one thing at a time
entrascope inspect applications --expiring # credentials about to expire
entrascope inspect enterprise-apps --expiring # including SAML signing certificates
entrascope inspect applications --type single-page-application
entrascope inspect enterprise-apps --type managed-identity
entrascope inspect applications --app my-api --output json
entrascope logs audit --failures-only # failed directory changes
entrascope logs audit --app my-api
entrascope logs signins --kind service-principal --failures-only
entrascope logs signins --app my-api --hours 6
entrascope logs graph-activity --workspace <workspace-id>
entrascope logs kinds # which sign in kinds exist
entrascope logs categories # which audit categories exist
entrascope logs audit --category all --hours 6 # every category, last six hours
entrascope logs audit --pick # number the lines and open one
entrascope inspect gallery saml # what can be added ready made
entrascope errors explain AADSTS7000215
entrascope errors explain "AADSTS50011: The redirect URI does not match"
entrascope errors search consent
entrascope errors list
inspect apps and inspect sps are short forms, and discover is the name
inspect used to have, which still works.
The types an application is classified as
--type takes one of these. The registration decides the first six; the last
four are what a service principal itself determines.
| Type | What it means |
|---|---|
confidential-client |
holds a secret or a certificate |
web-client |
a web redirect URI and no credential |
single-page-application |
authorization code with a proof key, no secret |
native-or-mobile |
a public client redirect URI and no credential |
public-client |
nothing registered that says how it authenticates |
api-or-resource |
exposes an API and signs nobody in |
workload-identity-federation |
a federated credential rather than a secret |
saml-gallery |
SAML single sign on, from the gallery |
saml-non-gallery |
SAML single sign on, configured by hand |
managed-identity |
created by Azure alongside a resource |
enterprise-application |
a service principal whose client type is decided by its registration |
legacy |
predates the current application model |
Reading the same data two ways
Audit events and sign ins can be answered by Microsoft Graph or by Azure Monitor, and both return the same fields.
entrascope logs audit --route graph # any tenant
entrascope logs audit --route monitor --workspace <id> # longer retention
The route decides where an answer comes from, not which questions may be asked.
Both take the same --app, --hours, --limit and --category, and both
narrow at the service rather than after the rows arrive, so a lookback is a
lookback and not a suggestion. Each sign in kind is exported to a table of its
own, and the monitor route reads the table belonging to the kind asked for.
The Graph route needs only the right permission. The Monitor route needs a diagnostic setting and the Log Analytics Reader role, and gives longer retention. Microsoft Graph activity exists only through Azure Monitor. Sign in logs of any kind need an Entra ID P1 or P2 licence; audit logs do not.
Configuration
Every endpoint, table name, retry value, error code, vocabulary and documentation link lives in configuration rather than in code.
entrascope config path # which directory is in force
entrascope config export # a copy to read, in Downloads
entrascope config export --use # put it where it takes effect
entrascope config export --only credentials.yaml # or just the one file
entrascope config show # every setting in force
entrascope config show endpoints.yaml # read one file
config show with nothing named is the configuration entrascope is actually
running with, as YAML, above the full paths it was read from and the
directories it searched in order. It is the answer to "which file do I edit".
config export with no destination writes to your downloads folder, where a
file is easy to find and open, and says so with the full path of everything it
wrote. That copy is for reading and does not take effect on its own.
config export --use writes to ~/.config/entrascope, which is outside the
package, so upgrading never touches it, and which is used automatically. It
is layered over the shipped defaults: copy only the files you want to
change, and everything else comes from underneath, so a release that adds a
setting is picked up without you doing anything and a file you wrote two
releases ago keeps working.
Do not edit the copy inside site-packages. It is replaced every time
entrascope is upgraded, and entrascope config path will tell you if that is
the one being read.
--config-dir and ENTRASCOPE_CONFIG_DIR name a directory for one command or
one shell. A directory named that way is used as it stands, with no
layering, and is required rather than preferred, so a typo fails instead of
quietly falling back.
Output
Four formats, each for a different reader.
| Format | For |
|---|---|
table |
reading at a terminal. Aligned columns, no box drawing, colour where colour means something |
plain |
grep, awk, a spreadsheet, or pasting into a ticket. Tab separated, every field, nothing truncated |
json |
a machine. The same bytes an MCP tool returns |
yaml |
a machine, read by a person |
A table shows the columns worth reading and says so. Everything else is in
--output plain. json and yaml are quiet, so the output can be piped
straight into another tool. Timestamps are shown to a hundredth of a second
with the zone named, in UTC by default, or --timezone local for the machine's
own zone.
Identity
--auth chooses it: file, env, azure-cli or default. Without it the
credential file is tried and then the Azure CLI session, so az login and then
entrascope doctor works with nothing else set up. The credential file wins
when it is present, so an unattended run behaves the same whatever else is on
the machine.
errors explain, errors list and errors search need no credentials at all,
because the mapping is configuration.
Every option works on either side of the subcommand: entrascope --auth azure-cli logs audit and entrascope logs audit --auth azure-cli are the same
command.
As an MCP server
entrascope serve stdio
Register it with an assistant that speaks the Model Context Protocol. stdio has no OAuth, so credentials come from the environment or the credential file exactly as they do for every other command, and the server runs with your privileges. Every tool reads. None of them changes the directory.
The tool surface mirrors the commands: doctor, inspect, discover_applications,
discover_service_principals, audit_events, sign_ins, graph_activity,
explain_error, list_error_codes and sign_in_kinds. A tool result and the
corresponding --output json payload are the same bytes, which a test
enforces.
As a remote server
entrascope serve http --host 0.0.0.0 --port 8000
An OAuth 2.1 protected resource validating Entra issued bearer tokens.
Terminate TLS at a reverse proxy and set ENTRASCOPE_BASE_URL to the canonical
https URI, which appears in the protected resource metadata and which clients
bind their tokens to. Set ENTRASCOPE_TENANT_ID and ENTRASCOPE_CLIENT_ID for
the application registration this server presents.
The audience must equal the application id URI, a token issued for anything else is refused, and the caller's token is never forwarded to Microsoft Graph: Graph is called with the server's own credentials, because the data is tenant scoped rather than caller scoped.
A container image is built from the Dockerfile, running as a non root user on
python:3.14-slim.
Corporate networks
entrascope honours a forward web proxy from HTTPS_PROXY, HTTP_PROXY,
ALL_PROXY and NO_PROXY, and verifies TLS against a private certificate
authority named in ENTRASCOPE_CA_BUNDLE, REQUESTS_CA_BUNDLE,
SSL_CERT_FILE, CURL_CA_BUNDLE or the SSL_CERT_DIR directory. The same
trust reaches the token endpoint and Azure Monitor. Run entrascope doctor to
see exactly which proxy and which certificate authority are in force.
Documentation
Steering documents live in docs/steering: product, technology stack, repository structure, coding standards, configuration, credentials and security, Graph and Monitor, MCP server, testing strategy, release and publishing and the phased task plan.
Contributing
One change is one pull request, and every check must pass before it merges. The
gate is ruff check, ruff format --check, mypy --strict src and pytest,
plus five structural guards: no endpoint or table name written into code, no
class without a framework contract comment, no secret in any output, one HTTP
stack, one logger.
python3.14 -m venv .venv
.venv/bin/pip install -e ".[dev]"
.venv/bin/ruff check src/ tests/ && .venv/bin/mypy --strict src && .venv/bin/pytest
The rules the code follows, and why, are in docs/steering. Read coding-standards.md first.
Security
Reporting a vulnerability, what entrascope does with credentials, and the rules the remote server holds to: SECURITY.md.
Licence
MIT. See LICENSE.
Release files for entrascope 0.1.18
For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.
Source distribution (sdist)
| File | Size | Uploaded | |
|---|---|---|---|
| entrascope-0.1.18.tar.gz | 260.6 kB | Details |
Built distribution (wheel)
| File | Interpreter | ABI | Platform | Reset |
|---|---|---|---|---|
| entrascope-0.1.18-py3-none-any.whl | Python 3 | none | any | Details |
Total release size: 450.0 kB
Release files / entrascope-0.1.18.tar.gz
| Download URL | entrascope-0.1.18.tar.gz |
|---|---|
| Size | 260.6 kB |
| Tags | Source |
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