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| Section | Weight | Objectives |
|---|---|---|
| Topic 1: Agentic Automation Fundamentals | 20% | - Core principles of agentic automation - AI, LLM and generative AI concepts - Agents vs traditional robots |
| Topic 2: Orchestration & Human-in-the-Loop | 20% | - Escalations and Action Center - UiPath Maestro and BPMN modeling - Service tasks and agent invocation |
| Topic 3: Context & Knowledge Management | 20% | - Knowledge base integration - Context packages and grounding - Data sources and retrieval methods |
| Topic 4: Governance, Evaluation & Trust | 15% | - Guardrails and responsible AI - Agent performance evaluation - Observability and reliability |
| Topic 5: Agent Design & Development | 25% | - Tools, connections and integration services - Agent Builder in Studio Web - Prompt engineering best practices |
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NEW QUESTION # 46
When is it appropriate to rely on Clipboard AI inside Autopilot for Everyone for a copy-and-paste task?
Answer: D
Explanation:
Cis correct -Clipboard AI, as embedded insideAutopilot for Everyone, is optimized forWindows environments, particularly when performingstructured copy-and-paste operations, such as extracting tables from a PDF and transferring them to Excel, Word, or web forms.
Best-use scenario:
* You copy structured data (like a table or text block)
* Paste it once into theAutopilot chat window
* Ask Autopilot to "paste this into [target app] in a structured format"
* It leverages Clipboard AI's logic to map and format the content intelligently Option A is incorrect - Autopilot doesn't queue multiple pastes. Each interaction is scoped.
B overstates platform independence - current support isWindows-first.
D is incorrect - Clipboard AI doesnot support macOS or cross-VM pastingyet.
This capability helpsnon-technical users automate repetitive copy-paste actions, improving speed, accuracy, and structure when transferring information across applications.
NEW QUESTION # 47
What is one of the key benefits of providing RAG as a service to UiPath generative AI experiences?
Answer: A
Explanation:
The correct answer is A - RAG (Retrieval-Augmented Generation) enhances generative AI experiences in UiPath by providing grounded, context-relevant data at runtime, which significantly reduces hallucinations.
Here's how it works:
When an LLM receives a query, RAG pulls relevant documents or snippets from enterprise data sources (like knowledge bases, SharePoint, Confluence).
This content is passed to the LLM as context, enabling the model to respond using ground truth, not generic or fabricated knowledge.
UiPath's GenAI platform and agentic agents use RAG to:
Enrich prompt context
Drive document-based answers
Support fact-checked decisions in customer service, HR, IT, etc.
Option B is false - RAG doesn't alter the LLM's context window.
C is incorrect - RAG works because it queries live knowledge bases.
D is wrong - RAG supports real-time dynamic data, not just historical.
NEW QUESTION # 48
In a UiPath Agent, which statement best captures the essential purpose of a system prompt?
Answer: C
Explanation:
Ais correct - in UiPath's agent framework, asystem promptserves as the agent'score grounding mechanism. It is responsible for:
* Defining the agent's identity("You are an IT support assistant...")
* Outlining its goal("Your job is to classify, triage, and resolve tickets...")
* Setting operational boundaries and behaviors
* Specifying when to escalate to a humanor use tools
This aligns with UiPath'sContext Grounding strategy, which separatessystem prompts,user prompts, and tools orchestration. The system prompt providespersistent context, guiding the LLM's behavior consistently across user interactions and actions.
Option B downplays its influence - which is critical.
C reduces it to output formatting, which is only a small part.
D is unrealistic - LLMs generalize; they don't require enumerating every path.
Correct system prompting ensuressafe, consistent, goal-aligned behaviorfrom the agent across dynamic scenarios.
NEW QUESTION # 49
What is the defining characteristic of few-shot prompting?
Answer: D
Explanation:
Dis correct - the defining feature offew-shot promptingis the inclusion ofmultiple input-output examples within the prompt todemonstrate the desired behavior or output structureto the LLM.
In UiPath's Agentic Prompting practices, few-shot examples help:
* Anchor the model to a consistent format
* Reduce ambiguity in task instructions
* Improve performance in tasks like classification, transformation, or content generation Example:
Input: "My password isn't working."
Output: "Category: Login Issue"
Input: "App won't open."
Output: "Category: Access Error"
This trains the model within the prompt - no fine-tuning required - making it apowerful design patternin building intelligent agents.
Option A describeschain-of-thought prompting.
B refers tozero-shot prompting.
C refers toprompt chaining, used in advanced orchestration, not few-shot logic.
NEW QUESTION # 50
When mapping business process steps to agent tasks using Task Capture, which BPMN element is mapped as a 'Decision' rather than as a unique element?
Answer: C
Explanation:
Dis correct - inTask CaptureandBPMN modeling, theExclusive Gatewayis the BPMN element that represents adecision point. It is used to:
* Split the process intomutually exclusive paths
* Route flow based on acondition or choice
When mapping these processes toagent behavior, the Exclusive Gateway typically translates to a"Decision" node, where the agent:
* Evaluates logic (e.g., "Is amount > $10,000?")
* Selects one path forward (e.g., "Escalate" vs. "Auto-approve")
This is a fundamental construct in UiPath'sagentic process modeling, enabling agents to handlebranching logic, make contextual choices, or call different tools based on runtime data.
Option A (Task) represents an activity, not a decision.
B (Swimlane) is used to group actions by role - not functional logic.
C (User Task) represents human involvement - not branching conditions.
UiPath emphasizes decision modeling to make agentsadaptive and responsive, and Exclusive Gateways are the tool to model such decisions cleanly and visually.
NEW QUESTION # 51
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