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Juniper Data Center, Specialist (JNCIS-DC) Sample Questions (Q23-Q28):
NEW QUESTION # 23
When creating a probe, an operator wants to make it easy to view that probe's output. In this scenario, which element must be created to accomplish this task?
- A. A dashboard widget
- B. A predefined probe
- C. A stage
- D. A processor
Answer: A
Explanation:
In Apstra IBA, a probe is a directed graph made of stages (data you can inspect) and processors (operations that transform/aggregate data). While stages can be inspected during probe construction, the simplest operational way to make probe results readily consumable by day-2 operators is to publish them through widgets that can be placed on Analytics dashboards. A dashboard widget is the visualization and presentation object that renders either (1) counts of anomalies or (2) the outputs produced by stages and processors in a probe. Creating a widget tied to the probe output means the operator can open a dashboard and immediately see the metric trends, tables, or anomaly indicators without navigating into probe internals.
A predefined probe is optional content (a starting template) and is not required for visibility. Processors and stages are internal probe building blocks, but they do not, by themselves, create an operator-friendly view in the UI. In a Junos v24.4 EVPN-VXLAN fabric, this is especially useful for link utilization, drops, latency signals, or any custom telemetry pipeline: you build the probe logic once, then expose the key results in a widget that persists across operational workflows and can be shared on standardized dashboards for capacity planning and troubleshooting.
Verified Juniper sources (URLs):
https://www.juniper.net/documentation/us/en/software/apstra4.2/apstra-user-guide/topics/concept/widgets.html
https://www.juniper.net/documentation/us/en/software/apstra4.2/apstra-user-guide/topics/topic-map/widget-stage-create.html
https://www.juniper.net/documentation/us/en/software/apstra4.2/apstra-user-guide/topics/concept/probes.html
NEW QUESTION # 24
Which statement is true when onboarding a Juniper Networks device using a Juniper Apstra ZTP server?
- A. The Hostname will be the serial-number of the device.
- B. The Management IP address cannot be predetermined.
- C. The State can be set In the ztp.Json file on the ZTP server.
- D. The Device Key lo be used can be set In the dhcpd.conf file on the ZTP server.
Answer: C
Explanation:
The ztp.Json file on the Apstra ZTP server contains the configuration parameters for each device that is onboarded using ZTP. One of the parameters is the State, which can be one of the following values: init, ready, in_progress, done, error, or disabled. The State indicates the current status of the device in the ZTP process. For example, if the State is ready, it means that the device is ready to be onboarded by the Apstra ZTP server. If the State is done, it means that the device has completed the ZTP process and is managed by the Apstra server. The State can be manually set or changed in the ztp.Json file to control the behavior of the device during ZTP.
NEW QUESTION # 25
You are asked to deploy a collapsed fabric architecture.
Which two statements are correct about this deployment? (Choose two.)
- A. Top-of-rack switches provide VXLAN support.
- B. Leaf devices are full-mesh connected.
- C. Top-of-rack switches are full-mesh connected.
- D. All EVPN-VXLAN overlay functions are provided by the leaf devices.
Answer: A,B
Explanation:
In a collapsed fabric architecture, the leaf devices act as both leaf and spine switches:
Leaf devices are full-mesh connected - because there is no dedicated spine layer, leaves interconnect directly with each other in a full mesh.
Top-of-rack switches (leaves) provide VXLAN support - they handle both access (server connectivity) and overlay/EVPN-VXLAN functionality.
NEW QUESTION # 26
What are three phases of the Juniper Apstra data center life cycle? (Choose three.)
- A. Configuration
- B. Design
- C. Deployment
- D. Operational phase
- E. Installation
Answer: B,C,D
Explanation:
Juniper Apstra describes data center fabric management as a full lifecycle that spans three core phases: Design (Day 0), Deployment (Day 1), and Operations (Day 2). These phases map directly to how Apstra applies intent-based networking to a data center fabric.
In the Design phase, you model the intended architecture-templates (3-stage or 5-stage), rack types, logical devices, interface maps, resource pools, and high-level constructs such as routing zones and virtual networks. The objective is to capture intent in a vendor-agnostic way while ensuring consistency and validation before anything is pushed.
In the Deployment phase, Apstra turns the modeled intent into device-level implementation. This includes onboarding systems, assigning device profiles, allocating resources, rendering configurations, and pushing the resulting configuration to switches so the IP fabric becomes operational. This is where Junos v24.4 leaf/spine nodes receive underlay and overlay configuration generated from the blueprint.
In the Operational phase, Apstra continuously validates the running network against intent using telemetry and analytics (IBA), detects deviations and anomalies, supports maintenance workflows (such as drain), and provides troubleshooting tools (queries, time-series utilization, and configuration compliance).
"Configuration" and "installation" are activities that occur within the lifecycle, but the lifecycle phases themselves are Design, Deployment, and Operations.
NEW QUESTION # 27
You want to gracefully take a device out of service to perform an OS upgrade. How would you accomplish this task using Juniper Apstra?
- A. After selecting the device in the Active tab, you would select Deploy Mode then Drain.
- B. After selecting the device in the Dashboard tab, you would select Deploy Mode then Upgrade.
- C. After selecting the device in the Staged tab, you would select Deploy Mode then Upgrade.
- D. After selecting the device in the Staged tab, you would select Deploy Mode then Drain.
Answer: A
Explanation:
In Apstra 5.1, the correct operational method to gracefully remove a switch from service for maintenance is to set its Deploy Mode to Drain. Drain is a day-2 operational control that tells Apstra to adjust intent so the fabric can continue operating while the targeted device is logically taken out of service as much as the design allows. This is especially relevant in EVPN-VXLAN leaf-spine fabrics where taking down a spine or a leaf can disrupt underlay BGP adjacencies and overlay reachability if traffic is not shifted first.
This action is performed from the blueprint's Active view because Drain affects the currently deployed, running fabric state (not a staged design change). Selecting the device under Active and changing Deploy Mode to Drain initiates the workflow that prepares the device for maintenance by reducing its role in forwarding and/or withdrawing dependent services according to the blueprint's modeled redundancy (for example, shifting server-facing traffic to an MLAG/ESI peer where applicable, or reducing reliance on the device for transit). After the device is drained, an OS upgrade can be performed with less impact, and the device can later be returned to service by switching Deploy Mode back to Deploy and committing the change.
The "Upgrade" action is not the deploy-mode mechanism described for graceful removal; the key is Deploy Mode → Drain from Active, which is explicitly intended for maintenance and decommissioning scenarios.
Verified Juniper sources (URLs):
https://www.juniper.net/documentation/us/en/software/apstra5.1/apstra-user-guide/topics/task/device-drain.html
https://www.juniper.net/documentation/us/en/software/apstra4.2/apstra-drain-mode/apstra-drain-mode-guide/topics/concept/apstra-drain-mode-activate-or-disable-drain.html
NEW QUESTION # 28
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