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QA Software Engineer 10350 – L2/L3 Networking | Python Automation | VxLAN EVPN

Extreme Networks · Hybrid

This listing is no longer available.

MeritLog keeps this source-backed description for reference. Availability is not verified, and there is no application link here.

Last seen by MeritLog September 11, 2026Source: LeverSource version: lever-postings-v1

Source: the employer's Lever job board. Open the original listing for current details. Availability is not verified for this retained page.

Job details

Work model
Hybrid
Salary
Not listed by source
Location
Bangalore

Job description

Qualifications and Requirements: Experience: 2-5 Years • BS or MS in EE/CS with 2 to 5 years of hands-on experience in functional, system test, and automation. • Solid technical knowledge of data center networking - IP Fabric, VxLAN EVPN, and network virtualization concepts. • Working knowledge of Ethernet, optics, and networking hardware. • Knowledge of routing protocols (OSPF, IS-IS, BGP, Multicast) and network security fundamentals. • Hands-on experience developing test automation using Python or Golang. • Experience with test planning, requirement-to-testcase mapping, defect logging and tracking, and debugging. • Exposure to AI/ML concepts or AI-assisted developer/testing tools (e.g., LLM-based assistants, GenAI copilots) applied to QA workflows. • Strong verbal and written communication skills and the ability to collaborate cross-functionally. • Highly motivated, self-driven, and eager to learn. Skillset Required Good knowledge and hands-on experience across most of the following areas: Networking • IEEE 802.1 (Bridging, VLAN, STP, MAC security, LLDP). • L2/L3 features (TCP/IP, VRRP, IGMP, IPv4/IPv6, ICMP/ICMPv6, ARP); basic IS-IS/BGP. • Network debugging tools (Wireshark, ping, traceroute) and traffic generators (Ixia/Spirent). Test Automation • Test scripting in Python or Golang; familiarity with automation frameworks and CI/CD (Jenkins/GitLab). • Version control (Git) and defect/test management tools (JIRA, qTest). • Exposure to Docker containerization and cloud environments (AWS, Azure, GCP) is a plus. AI in the Test Cycle • Familiarity with using AI assistants to generate/augment test cases and test data. • Interest in AI-based log analysis, failure triage, and test-coverage gap detection. • Understanding of prompt basics for applying GenAI tools responsibly within QA workflows. Methodology Knowledge of testing methodologies, testing types, and the overall product life cycle

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