Edge Network Migration Architect for 5G MEC
Listed on 2026-09-12
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Engineering
Systems Engineer
Jul 02, 2026 4 min read
PROJ Service Migration in Cellular NetworksThis project has three focus parts:
Cellular Networks Testbed, LLMs, and optimization algorithms.
Image from:
Real-Time Service Migration in Edge Networks: A Survey
The testbed architecture spans four tiers:
Central Cloud, Regional MEC, Aggregation MEC, and Local MEC.
Primary focus:
Regional MEC and Aggregation MEC.Regional MEC, Aggregation MEC, and Local MEC should be deployed to my PVE Testbed.
Each MEC site (or per Metro (metropolitan area) / PoP (Point of Presence)) needs its own control plane because:
- Survivability:
If WAN/backhaul drops, the site keeps running. A single, stretched cluster loses control-plane access and flakes. - Latency/etcd constraints:
Kubernetes control-plane (etcd) hates WAN latency/packet-loss; cross-site RTTs >~5-10 ms and jitter cause elections and outages. - Blast radius & upgrades:
Failures and rollouts stay local, enabling per-site upgrades. - Regulatory / tenancy:
Site-level isolation simplifies policy and compliance.
Cloud (Azure)
High-level design:
Azure Virtual WAN (Standard) with four hubs in a full inter-hub mesh. Regional spokes (AKS VNets) attach to their nearest hub; inter-hub routing provides global any-to-any.
Regions (paired for HA/DR):
- East US 2 (VA) - primary; paired with Central US (closest to UVA)
- Central US (IA) - DR for East US 2
- West US 3 (AZ) - west capacity/DR; paired with East US
- East US (VA) - additional east capacity and the formal pair for West US/West US 3
(All selected regions provide Availability Zones.)
TODO Regional MEC (e.g., Richmond PoP)50-200 km coverage | RTT to Aggregation 15-30 msUse cases: smart city, cloud gaming, content delivery
Components: SMF/AMF/PCF (control plane) + Regional UPF
10-50 km coverage | RTT to Local: 10-20 msUse cases: campus control, local CDN
OKD (3 master nodes)
Components: SMF/AMF/PCF (control plane) + optional Aggregation UPF
Components:
Local UPFDeploy two OKD SNOs or Micro Shift clusters (MEC-1: Campus South; MEC-2: Campus North)
N3 (gNB to UPF @ MEC): VLAN/VRF local to the site, low jitterN6 (UPF to campus/ISP): routed toward the PoP
Digital Twin
Must implement N2, N3, and optionally Xn. Focus on mmWave.
Focus on multi-agent workflow design and LLM fine-tuning.
ETSI = European Telecommunications Standards Institute
Famous work includes ETSI MEC (edge computing) and the original ETSI NFV effort.
Deploy Three LLMs to Regional MEC or Aggregation MEC:
Mobility Predictor Agent (MPA) Aggregation MEC / Local MEC (Near-RT RIC/O-RAN Layer) Context Generation:
Provides real-time prediction of UE handover and mobility patterns to anticipate service relocation. Real-time Radio KPIs (RSRP, RSRQ), Handover/Xn/N2 events, UE location/velocity. Proactive Migration:
Essential for timely initiation of migration at the lowest latency tiers, ensuring QoE under high mobility.
MEC Resource Agent (RCA) All Managed MEC Sites (Local, Aggregation, Regional) Local State Reporting:
Monitors the instantaneous resource utilization and available capacity of its local compute cluster (OKD/Micro Shift) CPU/Memory/GPU load, Available network bandwidth, K8s/OKD/Micro Shift node metrics. Survivability and Autonomy:
Guarantees that every control-plane instance has local resource awareness, upholding isolation and independence
Migration Planner Agent (PLA) Regional MEC and Aggregation MEC (Control Plane) Decision-Making:
Determines the optimal migration target, timing, and method based on its scope (Local -> Local vs. Regional -> Regional). Aggregated Predictions (MPA data), Resource Availability (RCA reports), Service SLOs, Migration Cost Model. Hierarchical/Decentralized Decision:
Enables ultra-low-latency decision-making for local PoP…
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