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UiPath 和 BDO 推出人工智能驱动的内部审计解决方案加速器

UiPath 和会计公司 BDO USA 宣布推出一款由 AI 驱动的联合软件套件,可实现跨 ERP 和云系统的内部审计控制自动化,旨在用持续的、代理驱动的监控取代手动测试。

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Source-provided image accompanying UiPath and BDO launch AI‑driven internal audit solution accelerators
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出版商
portalerp.com
来源链接
portalerp.comhttps://portalerp.com/news/uipath-and-bdo-partner-to-build-artificial-intelligence-auditing-tools
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发生了什么

UiPath, a leader in business orchestration and automation, and BDO USA, an accounting and advisory firm, have expanded their existing partnership to create a set of AI‑enabled software agents called the Agentic Internal Audit Solution Accelerators. The accelerators are proprietary tools that automate IT Application Controls (ITAC) and IT General Controls (ITGC) testing for corporate finance departments. According to the Portal ERP report, the solution continuously monitors ERP and cloud environments, collects evidence, and flags exceptions for human review. It covers the full control lifecycle—from access‑management validation and segregation‑of‑duties monitoring to change‑management evidence collection, backup testing, and incident‑management controls. The platform also maps test results directly to internal audit objectives and generates evidence trails and exception reports to support regulatory defensibility.

UiPath and BDO USA announced the Agentic Internal Audit Solution Accelerators, a suite of proprietary AI tools designed to modernize IT Application Controls (ITAC) and IT General Controls (ITGC). The tools replace manual testing cycles with agent‑driven execution and professional review procedures.

The solution operates across enterprise resource planning (ERP) systems and cloud computing environments, providing continuous monitoring, evidence collection, and exception flagging for human auditors. It validates user provisioning, monitors segregation of duties, automates evidence collection for change‑management workflows, tests backup protocols, and executes control test scripts that map directly to audit objectives.

According to statements quoted in the Portal ERP article, BDO’s Eskander Yavar described the partnership as a “path from point‑in‑time, labor‑intensive control activities to a continuous, intelligent control environment,” while UiPath’s Andrada Morar highlighted the potential to expand control coverage and reduce manual effort.

来源详情: portalerp.com ↗

为什么这很重要

The announcement marks one of the first AI‑centric, end‑to‑end audit automation offerings that moves internal control testing from periodic, labor‑intensive cycles to continuous, intelligent monitoring. For finance and audit teams, this could dramatically expand control coverage, improve consistency, and reduce the manual effort that has traditionally limited audit scope. By AI agents within the UiPath platform and leveraging BDO’s risk‑consulting expertise, the solution promises faster evidence collection and more timely exception detection, which may help organizations meet tighter regulatory timelines and reduce audit‑related costs. The partnership also signals a broader trend of AI being embedded directly into compliance and risk‑management workflows, an area historically resistant to automation.

The product targets a traditionally manual and resource‑heavy segment of enterprise operations—internal audit and compliance—where continuous monitoring has been limited. By automating evidence collection and test execution, organizations could achieve faster detection of control failures and improve audit defensibility.

AI agents within the UiPath platform leverages existing automation infrastructure, potentially lowering integration barriers for enterprises already using UiPath for other workflows. This could accelerate AI adoption in finance functions that have been slower to modernize.

The collaboration combines UiPath’s technology with BDO’s deep risk‑consulting expertise, offering a joint value proposition that may be more compelling than standalone AI tools. This partnership could set a precedent for other professional services firms to co‑develop AI solutions with technology vendors.

Interactive Mechanism

互动机制:它实际上是如何运作的

以交互方式探索这一发展背后的基础技术。

Agent Lifecycle Stage:
1
User Intent & Planning: "Audit customer refund request #4092 and settle payment."
2
Tool Calling: Emits structured JSON call crm_get_transaction(id='4092').
3
Guardrail & Verification:🛡️ Paused: High-value action requires human operator sign-off.
4
Final Settlement: Refund recorded, email receipt dispatched, and audit log stored.
Core takeaway: An AI agent is not just a language model—it is a closed loop of planning, tool invocation, and environment feedback. Production systems require self-healing retries and strict human approval guardrails.
交互式概念检查+10 Points
AI Agents Quiz

An agent must create a draft calendar event for Tuesday at 2 p.m. Which evidence would establish the requested result?

接下来看什么

Key factors to monitor include: (1) adoption rates among large enterprises and the speed at which finance departments replace legacy audit processes; (2) any regulatory feedback or guidance on AI‑driven audit evidence, especially from bodies such as the SEC or PCAOB; (3) pricing and licensing models, which the source does not disclose, leaving cost‑benefit calculations uncertain for potential customers; (4) competitive responses from other automation vendors that may launch similar AI audit tools; and (5) measurable outcomes reported by early adopters, such as reductions in audit cycle time or error rates.

Adoption metrics: early customer pilots, contract announcements, and reported reductions in audit cycle time will indicate market traction.

Regulatory stance: guidance from audit regulators on the acceptability of AI‑generated evidence could either enable broader use or impose constraints.

Pricing transparency: the source does not disclose cost or licensing terms, leaving uncertainty about the economic feasibility for mid‑size firms.

Competitive landscape: vendors such as SAP, Oracle, and emerging AI‑focused audit startups may respond with comparable offerings.

Performance data: independent assessments of the agents’ accuracy, false‑positive rates, and integration complexity will be critical for enterprise decision‑makers.

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