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AI Governance with Atlan: AI Use Circumstances, Threat Assessments, Workflows & Shadow AI Governance – Atlan

This visitor put up is by Sunil Soares, founder and CEO of YDC – AI Governance. Beforehand, he based and led Info Asset, an information administration agency. Sunil brings a deeply-researched perspective to AI governance—authoring 13 books which have formed how enterprises strategy knowledge and AI at scale.

The YDC workforce developed an AI Governance prototype in Atlan. We reused the present working mannequin with property and added customized attributes and relations.

AI Use Circumstances

As mentioned in an earlier weblog, a digital twin could also be a digital reproduction of a selected affected person that displays the distinctive genetic make-up of the affected person or a simulated three-dimensional mannequin that reveals the traits of a affected person’s coronary heart. Digital twins could also be utilized to speed up scientific trials and cut back prices within the life sciences trade. The YDC workforce carried out an summary of the Digital Twins for Medical Trials AI Use Case in Atlan.

AI Threat Assessments

We performed an AI Threat Evaluation for the use case with Atlan. Digital twins have the potential to introduce bias dangers primarily based on the algorithms and the underlying knowledge units. We documented the bias threat evaluation and a mapping to the related rules in Atlan.

We additionally documented the privateness dangers in Atlan.

We documented different dimensions of AI threat together with Reliability, Accountability, Explainability and Safety in Atlan. For the sake of brevity, I’ve not included these screenshots right here.

This use case would doubtless be labeled as Excessive Threat primarily based on the Medical Machine class of Article 6 of the EU AI Act.

AI Threat Evaluation Workflows

We configured an AI Threat Evaluation workflow in Atlan to route the AI Threat Evaluation to the suitable events for approval.

The screenshot beneath exhibits the AI Threat Evaluation in Permitted standing primarily based on approvals from the Operational Threat Administration Committee (ORMC) and the AI Governance Council.

Shadow AI Governance to Ingest Metadata from ServiceNow CMDB and YDC_AIGOV Brokers on Hugging Face to Spotlight COTS Apps with Embedded AI

In an earlier weblog, I mentioned Shadow AI Governance and the YDC_AIGOV brokers. As half of the present train, we ingested metadata across the Industrial-off-the-Shelf (COTS) apps into Atlan. This data contains metadata comparable to Software Identify, Privateness Coverage URL, Information Particularly Excluded from AI Coaching, Embedded AI and Decide-Out Possibility.
The screenshot beneath exhibits Atlan earlier than operating the mixing with the YDC_AIGOV brokers. The catalog solely comprises one AI Use Case (Digital Twins for Medical trials) and one utility (Google Product Companies).

After operating the mixing with Atlan API, Atlan comprises a broader record of purposes together with Actimize Xceed together with metadata in the proper panel.

Conditional Logic with Atlan API to Auto-Create AI Use Case and AI Threat Evaluation Objects

We carried out conditional logic within the Atlan API to auto-create AI use circumstances just for purposes with embedded AI. On this case, we created an AI use case object in Atlan for Actimize Xceed as a result of Embedded AI = “Sure.”

We additionally carried out conditional logic within the Atlan API to auto-create AI Threat Evaluation objects the place Information Particularly Excluded for AI Coaching = “No.” Clearly, this logic is configurable.

This can be a fundamental AI Governance configuration in Atlan with extra to come back!

This put up was initially revealed on Your Information Join. Learn the unique article right here.

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