Tuesday, July 1, 2025

Get began with the Deep Community Mannequin AI Assistant in Cisco U.

At Cisco Stay in San Diego, D.J. Sampath, Senior Vice President of Cisco’s AI Software program and Platform group, wowed the gang with a demo of AI Canvas. That’s a multi-data, multi-agent system, built-in with Cisco’s AI Assistant and powered by Cisco’s Deep Community Mannequin. In that demo, we might all see AI Canvas’s means to hurry troubleshooting, convey siloed groups collectively, and allow automation throughout all the stack.

AI Canvas gained’t be obtainable till October. Nonetheless, we wished to supply our CCIEs, CCDEs, and Cisco Licensed DevNet Consultants the chance to work with the Deep Community Mannequin as quickly as potential. So we’re making the mannequin obtainable to CCIEs and different consultants by an AI Studying Assistant obtainable in Cisco U.

We expect CCIEs (and shortly, different community engineers) will discover a wealth of ways in which the Deep Community Mannequin may help them study extra and develop into extra environment friendly. However we understand that agentic ops is model new, and that you just is perhaps questioning how one can instantly begin experimenting with the Deep Community Mannequin. So I believed I’d provide some pattern use circumstances that will help you get began.

Tailor-made eventualities and coaching paths

As a CCIE, you’ve acquired years—generally a long time—of expertise in networking, and also you’re absolutely up to the mark in your group’s IT infrastructure. However what about your crew members, particularly extra junior community engineers? The Deep Community Mannequin AI Assistant can be utilized to construct tailor-made eventualities and coaching concepts so that everybody in your crew can study the abilities wanted for the community you at present have, in addition to any new applied sciences your group plans to roll out.

The Deep Community Mannequin understands a variety of networking applied sciences, however it’s educated explicitly on a depth and breadth of Cisco-specific materials. It’s additionally educated on the supplies and coursework obtainable in Cisco U. You would possibly strive a immediate akin to this one:

  • I’m the tech lead for a small crew of community engineers. I must rapidly get them up to the mark on the networking know-how we use in our surroundings, together with BGP, MPLS, and OSPF. May you construct me a customized research plan?

Once I requested this query of the Deep Community Mannequin AI Assistant, I acquired a really good syllabus in define type, with hyperlinks to programs in Cisco U.

Right here’s a pattern:

Design validation and optimization

Cisco Validated Designs (CVDs) are basically blueprints, and IT professionals are accustomed to working by them. However generally you want extra steering. The Deep Community Mannequin AI Assistant may help make CVDs extra navigable. It will possibly entry different sources to assist flesh out CVDs and provide solutions for bettering or optimizing designs.

It will possibly additionally summarize the CVD, supplying you with a high-level overview earlier than studying the entire thing. You possibly can ask it questions akin to:

  • Contemplating the CVD for FlexPod, present a getting-started doc that I can use to configure my preliminary UCS supervisor.
  • I’m starting to implement the CVD for FlexPod. May you give me a high-level overview of what I’ll be doing and the items I’ll be working with?

The Deep Community Mannequin AI Assistant may help validate an present design with respect to a CVD and provide solutions for bettering or optimizing designs.

  • What sort of storage know-how ought to I contemplate for booting my blades in a UCS B chassis?

Should you’re having points with a CVD, you may ask the Deep Community Mannequin AI Assistant the place you must begin wanting.

Automation assistant

The Deep Community Mannequin AI Assistant also can assist with automation. You would ask it questions akin to:

  • I’m an skilled in community structure and wish some assist automating our department SD-WAN deployment. What could be a well-supported, easy-to-learn device that will assist me assist this? My crew doesn’t have a substantial amount of coding expertise. May you present examples and hyperlinks to related documentation and coaching?

Troubleshooting

The Deep Community Mannequin AI Assistant may help analyze community diagnostics, akin to syslog messages and debug output, and look at drawback signs to offer perception that is perhaps missed by human eyes. Though generative AI continues to be a younger know-how that may make errors, expert-level IT professionals are well-equipped to judge the output for accuracy and detect hallucinations.

For instance, the Deep Community Mannequin AI Assistant might assist interpret a syslog message. You would merely enter the message into the assistant and say you want recommendation or a spot to begin. As a result of it’s educated on Cisco’s syslog codecs, it may give steering and cross-reference different knowledge.

Should you’re working with a number of knowledge sources, the evaluation turns into extra advanced. With the Deep Community Mannequin AI Assistant, you may describe the symptom you see after which ask, “What ought to I search for?” (After all, you must at all times watch out about pasting uncooked output into AI.) On this method, you should use the assistant to information you to the purpose the place you’re comfy taking on.

Plenty of debugging is basically various kinds of diagnostic knowledge and trying to find the needle in a haystack that can assist you already know what to do subsequent. The Deep Community Mannequin AI Assistant may help with that course of. For instance, if it’s essential to troubleshoot routing adjacencies, you’ll probably want to assemble knowledge from a number of units and correlate the information to establish a root trigger.

You are a community troubleshooting assistant. Assist me diagnose why my OSPFv3 session shouldn’t be establishing with one neighbor. That is the output from ‘present ospfv3 neighbor’:

          OSPFv3 1 address-family ipv6 (router-id 192.0.2.1)

 

Neighbor ID     Pri   State           Lifeless Time   Interface ID    Interface
 
 192.0.2.2    128   EXCHANGE/BDR    00:00:38    13              Vlan300
 
 192.0.2.6    128   FULL/DR         00:00:37    5               Vlan300
 
 And that is the related config from Vlan300: 
 
 ipv6 handle FE80::300:241 link-local
 
 ipv6 handle 2001:DB8::241/64
 
 ipv6 allow
 
 ipv6 mtu 1500
 
 ipv6 nd dad makes an attempt 0
 
 ipv6 nd ra suppress all
 
 no ipv6 redirects
 
 ipv6 ospf 1 space 0
 
 bfd interval 1000 min_rx 1000 multiplier 5

 

Right here’s the response I acquired:

Sooner or later, many people find yourself troubleshooting on the protocol stage (packet seize or it didn’t occur, proper?), the place issues get advanced in a short time. On this case, you may paste the decoded output of a packet seize (akin to that from Wireshark or Tshark) to the Deep Community Mannequin AI Assistant, which may break down the body particulars for you. It will possibly establish hard-to-spot points and dramatically enhance the efficacy of deep networking troubleshooting.

The AI assistant may give you extra which means and context than you would possibly get with different instruments. I attempted this with a problematic SNMPv3 packet. The AI assistant appeared on the worth of the fields and defined them to me. Whereas Wireshark confirmed me the sphere names, the AI assistant defined that one subject, the msgAuthoritativeEngineTime, represented the variety of seconds a tool had been on-line, which was 61411 (roughly seven weeks). The factor is, I simply booted that machine. So my SNMP supervisor was confused, and the SNMPv3 lure wasn’t being trusted. Bug discovered!

Whereas most of us are fairly conversant in a variety of community applied sciences, we will not be consultants in each one of many protocols we run on our community. Subsequently, contemplate how helpful this may be for a protocol you’re not extremely educated about on the subject stage. The AI assistant is superb at analyzing these fields and explaining their network-relevant context. Whereas the assistant gained’t resolve the issue for you, when used correctly, it may give you some good hints. When you perceive extra about these fields, making use of some reasoning and fixing the bug is far simpler.

These are simply among the ways in which the Deep Community Mannequin AI Assistant could possibly be useful to skilled community engineers. I hope they’re a helpful springboard in your pondering. Should you strive them out, I’d be excited to listen to concerning the outcomes you’re getting.

However I’d be much more excited to listen to about use circumstances you’ve provide you with that I would by no means consider. AI is an extremely highly effective device that may make us extra environment friendly and, frankly, much less harassed. However we should work out one of the best methods to make use of them, and we’re all on that journey collectively.

 

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