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Splunk Observability Engineer

Job in Location, Tucker County, West Virginia, USA
Listing for: Ness Digital Engineering
Full Time position
Listed on 2026-08-03
Job specializations:
  • IT/Tech
    Data Analyst, Data Engineering
Salary/Wage Range or Industry Benchmark: 120000 - 160000 USD Yearly USD 120000.00 160000.00 YEAR
Job Description & How to Apply Below
Location: Location

Job Specification:
Splunk Observability Engineer Synopsis

To design, implement, and optimize a full-stack observability strategy using the Splunk Observability Cloud (formerly Signal Fx) and Splunk Enterprise/Cloud
. You will ensure that engineering teams have 360-degree visibility into system health, moving the organization from reactive "firefighting" to proactive "pattern-based" incident prevention.

Key Responsibilities
  • Data Orchestration: Architect the ingestion of the "Three Pillars" (Metrics, Logs, Traces) using Open Telemetry (OTel) collectors.
  • Aggregation Strategy: Develop logic to aggregate high-cardinality data to reduce "noise" while maintaining "signal" for troubleshooting.
  • Analytical Modeling: Use SPL (Search Processing Language) and Signal Flow to perform pattern analysis, detecting anomalies before they trigger traditional threshold alerts.
  • Visual Storytelling: Build executive and technical dashboards that correlate disparate data points (e.g., showing how a spike in 500-errors in Logs relates to a specific span in a Trace
    ).
Required Hands on Technical Skills 1. Telemetry & Data Specialization
  • Logs: Proficiency in "Logging-in-Context." You must be able to link logs directly to trace IDs so developers can jump from a failing trace to the specific line of code in the logs.
  • Metrics: Expertise in Signal Flow (Splunk’s background streaming analytics language). You should know how to calculate percentiles ($P95, P99$), rates of change, and historical averages.
  • Traces: Deep understanding of Distributed Tracing
    . You must know how to instrument applications (Java, Python, Go) to capture spans and identify bottlenecks in microservices.
2. Pattern Analysis & Aggregation
  • Anomaly Detection: Ability to configure Metric Finder and MDetector using standard deviations or "Mean Absolute Deviation" to find outliers.
  • Data Scrubbing: Skills in using Splunk Ingest Actions or Edge Processors to filter, mask, or aggregate data at the edge to save on license costs and improve search speed.
  • Pattern Discovery: Using Splunk’s machine learning commands (e.g., find keywords, cluster) to group millions of log events into a few dozen "patterns" for faster root cause analysis.
3. Hands on - Dashboards & Visualization
  • High-Cardinality Handling: Designing dashboards that don’t "break" when viewing thousands of containers.
  • Contextual Drill-downs: Building "Glass Tables" (in ITSI) or Unified Dashboards that allow a user to click a metric and immediately see the associated logs.
  • Frameworks: Familiarity with the Dashboard Studio and JSON-based dashboard definitions for version control (Git Ops).
Preferred Qualifications & Certifications
  • Splunk Cloud Certified Metrics User: Focuses on the metrics and alerting side.
  • Splunk Core Certified Power User: Essential for mastering complex SPL for log analysis.
  • Open Telemetry Expert: Knowledge of the OTel Collector configuration (receivers, processors, exporters) is currently the most "in-demand" skill for this role.
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