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DDN

Staff Engineer - L4

Pune Office

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hirly's read of this role

Role family
Engineering
Seniority
Lead / management
Country
IN
Work mode
On-site / unstated
First seen by hirly
28 Sept 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

Staff Engineer

DDN is seeking great candidates to join our dynamic team of passionate customer-enabling technologists!This is an incredible opportunity to be part of a company that has been at the forefront of AI and high-performance data storage innovation for over two decades. DDN Storage is a global market leader renowned for powering many of the world's most demanding AI data centers, in industries ranging from life sciences and healthcare to financial services, autonomous cars, Government, academia, research and manufacturing

"DDN's A3I solutions are transforming the landscape of AI infrastructure." – IDC

“The real differentiator is DDN. I never hesitate to recommend DDN. DDN is the de facto name for AI Storage in high performance environments” - ~ Marc Hamilton

VP, Solutions Architecture & Engineering | NVIDIA

DDN is the global leader in AI and multi-cloud data management at scale. Our cutting-edge storage and data management solutions are designed to accelerate AI workloads, enabling organizations to extract maximum value from their data. With a proven track record of performance, reliability, and scalability, DDN Storage empowers businesses to tackle the most challenging AI and data-intensive workloads with confidence.

Our success is driven by our unwavering commitment to innovation, customer-centricity, and a team of passionate professionals who bring their expertise and dedication to every project. This is a chance to make a significant impact at a company that is shaping the future of AI and data management.

Our commitment to innovation, customer success, and market leadership makes this an exciting and rewarding role for a driven professional looking to make a lasting impact in the world of AI and data storage.

Job Description

As a Staff Engineer – L4 , you’ll be an escalation point for the most complex and critical issues affecting enterprise and hyperscale environments. This hands-on role is ideal for a deep technical expert who thrives under pressure and has a passion for solving distributed system challenges at scale. This role is part of the Infinia Core engineering team.

You’ll collaborate with Engineering, Product Management, and Field teams to drive root cause resolutions, define architectural best practices, and continuously improve product resiliency. Leveraging AI tools and automation, you’ll reduce time-to-resolution, streamline diagnostics, and elevate the support experience for strategic customers.

Key Responsibilities

Technical Expertise & Escalation LeadershipOwn critical customer case escalations end-to-end, including deep root cause analysis and mitigation strategies.

Act as one of the technical escalation points for Infinia incidents — especially in productionimpacting scenarios.

Lead war rooms, live incident bridges, and cross-functional response efforts with other engineering, QA, and Field teams.

Utilize AI-powered debugging, log analysis, and system pattern recognition tools to accelerate resolution.

Product Knowledge & Value Creation

Become a subject-matter expert on Infinia internals: metadata handling, storage fabric interfaces, performance tuning, AI integration, etc.

Reproduce complex customer issues and propose product improvements or workarounds.

Author and maintain detailed runbooks, performance tuning guides, and RCA documentation.

Feed real-world support insights back into the development cycle to improve reliability and diagnostics.

Customer Engagement & Business Enablement

Partner with Field CTOs, Solutions Architects, and Sales Engineers to ensure customer success.

Translate technical issues into executive-ready summaries and business impact statements.

Participate in post-mortems and executive briefings for strategic accounts.

Drive adoption of observability, automation, and self-healing support mechanisms using AI/ML tools.

Delivering training to customer support and field engineering

Required Qualifications

8+ years in enterprise storage, distributed systems, or cloud infrastructure support/engineering.

Deep understanding of file systems (S3, POSIX, NFS), storage performance, and Linux kernel internals.

Scripting and Coding using Python, Go, C++

Proven debugging skills at system/protocol/app levels (e.g., strace, tcpdump, perf).

Hands-on experience with troubleshooting on Linux.

Exposure to RDMA, NVMe-oF, or high-performance networking stacks.

Exceptional communication and executive reporting skills.

Experience using AI tools (e.g., log pattern analysis, LLM-based summarisation, automated RCA tooling) to accelerate diagnostics and reduce MTTR.

Preferred Qualifications

Experience with DDN, VAST, Weka, or similar scale-out file systems.

Strong scripting/coding ability in Python, Bash, or Go.

Familiarity with observability platforms: Prometheus, Grafana, ELK, OpenTelemetry.

Knowledge of replication, consistency models, and data integrity mechanisms.

Exposure to Sovereign AI, LLM model training environments, or autonomous system data architectures.

This position requires participation in an on-call rotation to provide after-hours support as needed.

Success Metrics – First 30 Days

Technical Ramp-Up

Complete Infinia training, labs, and architecture deep dives. o Stand up a fully functioning Infinia test system. o Shadow at least 5 complex escalations and participate in 2 customer calls.

Operational Integration

Lead one live incident response and deliver a full RCA within 48 hours. o Propose 3+ enhancements to internal tools, AI/automation usage, or documentation. o Establish key partnerships with Engineering and Field teams.

Strategic Insight

Deliver a written 30-day reflection with gaps and high-impact recommendations. o Begin identifying patterns where AI or automation can reduce MTTR or improve proactive detection.

Success Metrics – Beyond 30 Days

MTTR on high-severity cases is consistently below internal SLAs.

Volume and quality of resolved L4 escalations.

Strategic tooling or automation contributions adopted across the support org.

Executive-ready RCAs that inform product improvement.

High-impact engagements with strategic accounts (prevention, performance tuning, etc.).

Original posting on DDN's site ↗

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