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Oracle Fusion Ai
ASecurityConnect AI agents to Oracle Fusion Cloud applications (ERP, HCM, SCM) using REST APIs, and leverage Oracle's 50+ pre-built AI agents for enterprise workflows.
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- Added September 6, 2026
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---
name: oracle-fusion-ai
description: Oracle Fusion Cloud AI and OCI Generative AI integration patterns. Use when connecting AI agents to Oracle ERP, HCM, SCM via REST APIs, or using Oracle's 50+ pre-built AI agents for finance, HR, and supply chain.
tags: [oracle, erp, fusion, oci]
---
# Oracle Fusion Cloud AI Integration
Connect AI agents to Oracle Fusion Cloud applications (ERP, HCM, SCM) using REST APIs, and leverage Oracle's 50+ pre-built AI agents for enterprise workflows.
## When to Use
- Querying or updating Oracle Fusion Cloud data (finance, HR, supply chain) from AI agents
- Understanding Oracle's 50+ pre-built AI agents for ERP, HCM, SCM
- Integrating external LLMs (Claude, GPT, Gemini) with Oracle data via REST APIs
- Using OCI Generative AI Service with Cohere or Llama models
## Oracle's Pre-Built AI Agents (50+)
| Domain | Agents |
|---|---|
| **Finance/ERP** | Invoice processing, cash forecasting, journal anomaly detection, expense audit, financial close |
| **HCM** | Recruiting, learning recommendations, workforce planning, benefits advisor, performance review |
| **SCM** | Demand forecasting, supply chain risk, order management, inventory optimization |
| **CX** | Service agent, sales assistant |
## OCI Generative AI -- Supported Models
| Provider | Models |
|---|---|
| **Cohere** | Command R, Command R+ (Oracle's primary LLM partner) |
| **Meta** | Llama 3, Llama 3.1 (70B, 8B) |
| **Note** | No native Claude, GPT-4, or Gemini. Use API Gateway for external LLMs |
## Patterns
### 1. Oracle Fusion Cloud REST API
```python
import requests
class OracleFusionClient:
def __init__(self, base_url: str, username: str, password: str):
self.base_url = base_url.rstrip("/")
self.auth = (username, password)
self.headers = {"Content-Type": "application/json", "REST-Framework-Version": "4"}
def _get(self, path: str, params: dict = None) -> dict:
response = requests.get(
f"{self.base_url}{path}",
auth=self.auth, headers=self.headers, params=params,
)
response.raise_for_status()
return response.json()
# --- Financials ---
def get_gl_balances(self, ledger_id: str, period: str) -> list[dict]:
return self._get(
"/fscmRestApi/resources/11.13.18.05/ledgerBalances",
params={"q": f"LedgerId={ledger_id};AccountingPeriod={period}", "limit": 100},
).get("items", [])
def get_invoices(self, supplier: str = "", limit: int = 25) -> list[dict]:
params = {"limit": limit}
if supplier:
params["q"] = f"VendorName LIKE '{supplier}%'"
return self._get("/fscmRestApi/resources/11.13.18.05/invoices", params).get("items", [])
# --- HCM ---
def search_employees(self, name: str) -> list[dict]:
return self._get(
"/hcmRestApi/resources/11.13.18.05/emps",
params={"q": f"DisplayName LIKE '{name}%'", "limit": 20},
).get("items", [])
def get_employee(self, person_id: str) -> dict:
return self._get(f"/hcmRestApi/resources/11.13.18.05/emps/{person_id}")
# --- Supply Chain ---
def get_purchase_orders(self, status: str = "OPEN", limit: int = 25) -> list[dict]:
return self._get(
"/fscmRestApi/resources/11.13.18.05/purchaseOrders",
params={"q": f"Status='{status}'", "limit": limit},
).get("items", [])
def get_inventory(self, item: str, org_id: str) -> list[dict]:
return self._get(
"/fscmRestApi/resources/11.13.18.05/inventoryOnhand",
params={"q": f"ItemNumber='{item}';OrganizationId={org_id}"},
).get("items", [])
```
### 2. OCI Generative AI Service
```python
import oci
config = oci.config.from_file()
generative_ai = oci.generative_ai_inference.GenerativeAiInferenceClient(config)
def generate_with_cohere(prompt: str) -> str:
"""Generate text using OCI Generative AI (Cohere Command R+)."""
response = generative_ai.chat(
oci.generative_ai_inference.models.ChatDetails(
compartment_id="ocid1.compartment.oc1...",
serving_mode=oci.generative_ai_inference.models.OnDemandServingMode(
model_id="cohere.command-r-plus",
),
chat_request=oci.generative_ai_inference.models.CohereChatRequest(
message=prompt,
max_tokens=1024,
temperature=0.1,
),
)
)
return response.data.chat_response.text
```
### 3. External LLM Integration via OCI API Gateway
```python
# For using Claude, GPT-4, or Gemini with Oracle data,
# route through OCI API Gateway or Oracle Integration Cloud (OIC)
import requests
def query_oracle_with_claude(question: str, oracle_data: dict) -> str:
"""Use Claude (via Bedrock or direct) to analyze Oracle data."""
import anthropic
client = anthropic.Anthropic()
response = client.messages.create(
model="claude-sonnet-4-5-20250929",
max_tokens=1024,
messages=[{
"role": "user",
"content": f"""Analyze this Oracle ERP data and answer the question.
Data: {oracle_data}
Question: {question}"""
}],
)
return response.content[0].text
```
### 4. Oracle APEX AI Integration
```sql
-- Oracle APEX AI Assistant: generate SQL from natural language
-- Available in APEX 24.1+
DECLARE
l_response CLOB;
BEGIN
l_response := APEX_AI.GENERATE(
p_prompt => 'List all overdue invoices over $10,000',
p_model => 'OCI_GENAI_COHERE',
p_system_prompt => 'Generate Oracle SQL for the AP schema. Tables: AP_INVOICES_ALL, AP_INVOICE_LINES_ALL.'
);
DBMS_OUTPUT.PUT_LINE(l_response);
END;
```
## Anti-Patterns
- Using OCI GenAI exclusively when Claude/GPT are needed -- Oracle's model selection is limited
- Direct database queries bypassing Fusion REST APIs -- always use REST APIs for application data
- Hardcoding Oracle credentials -- use OCI Vault or Oracle Credential Store
- Ignoring Oracle's data security policies -- Fusion enforces row-level security via business units
- Skipping pagination -- Oracle REST APIs use offset/limit; always handle multi-page results
## References
- [Oracle Fusion Cloud REST API](https://docs.oracle.com/en/cloud/saas/applications-common/24d/farca/)
- [Oracle AI Agents](https://www.oracle.com/artificial-intelligence/ai-agents/)
- [OCI Generative AI Service](https://www.oracle.com/artificial-intelligence/generative-ai/large-language-models/)
- [Oracle APEX AI](https://apex.oracle.com/en/platform/features/ai/)
<!-- Source: .faos/custom/skills/integrations/oracle-fusion-ai/SKILL.md -->
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