Fleet Reliability Engineer

Specter

$100K — $140K *
Technical Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Strong data and software skills in Python (or Go) and SQL.
  • Hands-on experience building and tuning observability stacks like OpenTelemetry, Grafana, or Prometheus.
  • Experience managing physical or embedded device fleets at scale and understanding hardware failure modes.
  • Proficient in analyzing field telemetry for trends, failure modes, and forecasts.
  • Fluent in databases and data modeling (PostgreSQL or similar); familiarity with infrastructure-as-code tools like Terraform is a plus.
  • Strong inclination towards automation and building mechanisms to reduce manual tasks.
  • Familiarity with reliability/SRE principles and experience with hardware-software integration is a plus.

Responsibilities

  • Own the reliability data pipeline from telemetry aggregation to instrumentation.
  • Reduce observability costs by optimizing tooling expenditures.
  • Instrument fleet data to establish health metrics for reliability evaluation.
  • Verify fleet-wide fixes and isolate genuine failures from transient ones.
  • Automate detection and recovery strategies for repeat failure patterns.
  • Analyze fleet telemetry to identify which cohorts and hardware revisions are trending toward failure.
  • Score reliability initiatives economically to prioritize addressing the most costly issues.

Benefits

  • Comprehensive health and wellness programs.
  • Flexible work hours and remote work options.
  • Professional development opportunities.
  • Collaborative and innovative working environment.
Full Job Description
The RoleSpecter is hiring a Hardware Test Engineer to develop and own our hardware test and qualification program. Our products operate in extremely demanding outdoor environments, and our customers depend on near-100% uptime. This role is central to delivering on that expectation. You will define how we validate our hardware, execute testing, manage certifications, and make sure the data you generate gets fed back into design decisions so that reliability improves with every revision.
Responsibilities:

Reliability Data Platform - Primary
  • Own the fleet's reliability data pipeline end to end: telemetry aggregation, storage, and instrumentation.
  • Drive down observability cost - own the tooling spend and cut what we pay for but don't use.
  • Instrument the fleet and own the health metrics that measure reliability.

Proof-of-Recovery & Alert Hygiene
  • Verify that fixes hold fleet-wide, not just on the device that paged.
  • Cut alert noise at the source - separate real failures from self-resolving ones.
  • Turn repeat failure patterns into automated detection and recovery.

Fleet Health & Failure-Mode Analytics
  • Turn fleet telemetry into a live picture of which cohorts, hardware revisions, and firmware versions are trending toward failure, and why.
  • Build the failure-mode analysis that tells engineering what to fix at the source.
  • Own fleet-wide trend and forecasting work, including power and solar planning.

Reliability Economics & Prioritization
  • Score reliability work in dollars - field-trip cost, hardware-return cost, observability spend - and prioritize the most expensive problems first.
  • Set and track the fleet's reliability targets: uptime, offline rate, truck-rolls per sensor-year.
  • Give the team the data to make reliability-versus-cost tradeoffs.
Qualifications:
  • Strong data and software skills - Python (or Go) and SQL - and the ability to own a data pipeline end to end.
  • Hands-on building and tuning observability stacks (OpenTelemetry, Grafana, Prometheus, Datadog, or similar), including their cost.
  • Experience operating physical or embedded device fleets at scale, and reasoning about how hardware fails in the field.
  • Comfortable turning messy field telemetry into trends, failure modes, and forecasts.
  • Fluency with databases and data modeling (PostgreSQL or equivalent); infrastructure-as-code familiarity (Terraform or similar) a plus.
  • Bias toward building mechanisms over doing manual work.
  • Nice to have: reliability/SRE fundamentals (SLOs, error budgets, proof-of-recovery) applied to a physical fleet.
  • Nice to have: experience across the hardware-software boundary - power, connectivity, and physical failure modes.

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