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Reliability Engineer

Job in Nashville, Davidson County, Tennessee, 37247, USA
Listing for: Augustbio
Full Time position
Listed on 2026-07-22
Job specializations:
  • Engineering
    Quality Engineering
Salary/Wage Range or Industry Benchmark: 110000 - 160000 USD Yearly USD 110000.00 160000.00 YEAR
Job Description & How to Apply Below

Headquartered in Nashville, TN – one of the fastest-growing and most exciting cities in the United States – August Bioservices is a privately‑owned, high‑growth, and high‑impact Contract Development Manufacturing Organization (CDMO). As a US‑based outsourcing partner that provides a wide array of expert drug discovery, drug formulation, and drug manufacturing services to pharma and biotech companies of all sizes, we play a vital role in the global pharmaceutical industry.

Our work is instrumental in helping to develop molecules today that can become the life‑changing therapies of tomorrow. To support our growth plans, August is investing significant capital in a two‑phase expansion project – including building a new state‑of‑the‑art facility adjacent to our current facility. For those seeking dynamic opportunities, rewarding career paths and a chance to make a difference in global health, come grow with August!

The Reliability Engineer is the system owner for equipment performance, operational risk, and sustainable improvement across existing manufacturing equipment, process‑support systems, and selected facility assets. Reporting to the Director of Engineering, this role converts recurring failures, deviations, quality events, safety concerns, and performance losses into technically sound and measurable improvements. The Reliability Engineer leads root cause analysis, establishes asset reliability strategies, develops design and process changes, and verifies that corrective actions remain effective.

The role partners closely with Manufacturing Engineering, Maintenance, Operations, Quality, Validation, Automation, MSAT, EHS, and Project Engineering. It is intentionally focused on eliminating systemic causes—not owning day‑to‑day equipment setup or serving as the primary coordinator during emergency breakdowns.

Reliability strategy and asset performance
  • Develop and maintain reliability strategies for critical assets based on equipment criticality, failure history, product/process risk, and lifecycle stage.
  • Establish asset performance baselines and monitor availability, reliability, maintainability, downtime, repeat failures, and chronic loss drivers.
  • Build and maintain equipment criticality assessments, bad‑actor lists, reliability roadmaps, and risk‑ranked improvement backlogs.
  • Support asset lifecycle decisions, including repair‑versus‑replace analyses, obsolescence planning, spare‑parts strategy, and capital recommendations.
Failure elimination and root cause analysis
  • Lead structured RCAs for repeat, high‑risk, or high‑impact equipment and process failures using appropriate methods such as 5‑Why, fault‑tree analysis, fishbone, FMEA, and data trending.
  • Translate event evidence into defensible failure mechanisms, corrective actions, owners, due dates, and measurable effectiveness criteria.
  • Identify common‑cause and systemic issues across assets rather than treating failures as isolated work orders.
  • Provide technical support to investigations, deviations, CAPAs, audit responses, and quality or safety events involving equipment performance.
Design, process, and workflow improvement
  • Serve as design authority for modifications to existing equipment within delegated scope, including mechanical, controls, instrumentation, guarding, utility interface, and workflow improvements.
  • Develop technical scopes, engineering calculations, drawings, specifications, risk assessments, and acceptance criteria for reliability improvements.
  • Lead process and process‑flow optimization when equipment design, system interaction, workflow, or risk controls must change.
  • Ensure modifications are evaluated and implemented through applicable change‑control, validation, commissioning, documentation, and training processes.
  • Confirm that improvements do not adversely affect validated state, product quality, data integrity, operator safety, cleanroom performance, or regulatory compliance.
Maintenance and condition‑based reliability
  • Optimize preventive maintenance tasks and frequencies using failure modes, work‑order history, OEM guidance, inspection results, and risk—not calendar frequency alone.
  • Develop predictive and condition‑monitoring…
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