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Time Machine

Control and Valve Installers and Repairers, Except Mechanical Door

Scrub through 148years of this role's history, from when it first emerged, through every wave of technology that reshaped it, to the cited projections for where it's heading next.

2026drag to travel through time
19001925195019752000now
2026
Known today as Control and Valve Installers and Repairers, Except Mechanical Door (BLS SOC 49-9012)
Latest actual · 2024
47K
OEWS is a point-in-time survey snapshot, not a continuous time series; BLS advises against using it for year-over-year trend comparison.
Latest actual · 2024
$74,690
Source: BLS-OEWS
Each dot is a cited figure over time; the dotted line only links them (values between aren't measured). Hollow dots are estimates.
Tools of the era

The tools that defined the work

Select an era to see how it reshaped the work.

  • Induction watt-hour meter + diaphragm gas meter (Shallenberger 1888, rotating disk era)

    Oliver Shallenberger's 1888 watt-hour meter used a rotating aluminum disk driven by electromagnetic induction to accumulate kilowatt-hour totals mechanically, a design so reliable it remained in production for over a century. The gas side ran on diaphragm meters whose flexible chambers expanded and contracted as gas flowed through, turning a mechanical register. Installing either type of meter required a field worker to mount the meter enclosure, make the incoming service connection, set the meter index to zero, and test it against a calibration standard. The calibration standard itself, a portable dead-weight tester or calibrated reference meter, was the workhorse of the meter test bench. A "meter man" in 1910 carried a toolkit of spanners, pipe wrenches, pressure gauges, and a portable ohmmeter, and worked out of a horse-drawn (later motor vehicle-mounted) service truck.

    Work toolChanging equipment
  • Welded steel pipeline + high-pressure regulator (pipeline expansion era, 1931-1965)

    The first 1,000-mile natural gas pipeline connecting Amarillo, Texas to Chicago was completed in 1931, and the war years brought advances in welded-steel pipe and arc welding that made long-distance gas transmission economical. The postwar residential boom drove a staggering acceleration: the American Gas Association reported 30.1 million US gas customers by 1956, and roughly half the existing mainline natural gas transmission network was installed in the 1950s and 1960s. Every new residential customer required a regulator at the service meter to reduce distribution pressure (typically 60-80 psi) down to appliance pressure (about 0.4 psi), plus a meter set to measure consumption. The meter-setter and service-person of this era worked from a panel truck carrying diaphragm meters in bulk, pressure regulators, flaring tools, pipe cutters, and a portable mercury manometer for pressure testing. Safety checks included leak-testing with soapy water and testing safety shutoffs. The Utility Workers Union of America, formally constituted in 1945-1946, secured apprenticeship programs and standardized testing requirements for meter installation workers across the major gas utilities.

    Effect on the work

    The 1940s-1960s natural gas pipeline boom was the high-water mark of employment growth for this occupation. Gains of 800,000 new gas customers per year were recorded in the mid-1950s, each requiring a new meter set and regulator installation. Employment in meter-installation and valve-maintenance roles likely peaked in the early 1960s as the initial connection wave was completed and subsequent work shifted more toward maintenance and replacement.

    Work toolChanging equipment
  • Solid-state metering + electronic test equipment (digital calibration era)

    The 1970s introduced solid-state electronic components into utility metering: digital registers replaced mechanical odometer-style counters, electronic test sets replaced portable reference meters and dead-weight testers, and portable handheld computers allowed field workers to log meter reads and calibration results electronically rather than on paper. Natural gas regulators gained more precise spring designs and temperature-compensation diaphragms in this era. For the field worker, the most significant shift was in calibration tooling: analog clip-on ammeters and mercury manometers gave way to digital clamp meters and electronic pressure transducers that displayed readings with greater precision and logged results for utility records. The work was still fundamentally hands-on and physically demanding, requiring the same pipe wrenches, flaring tools, and safety equipment as before, but the test-and-record portion of each service call became faster and more accurate.

    Work toolChanging equipment
  • Advanced Metering Infrastructure (AMI) smart meter rollout (Energy Policy Act 2005 onward)

    The Energy Policy Act of 2005 contained the first federal provision on "Smart Metering," touching off a decade-long AMI deployment campaign across US electric utilities. The Energy Independence and Security Act of 2007 accelerated the rollout. By 2013, AMI meters outnumbered the older one-way Automated Meter Reading (AMR) units for the first time in the residential sector. By the end of 2020, 90 million meters were operating in AMI mode. For the 49-9012 workforce, the AMI era was a decade of intensive installation work: every electromechanical rotating-disk meter in a utility's service territory eventually required physical replacement with a digital communicating unit. The installation itself was faster than a traditional meter set (no calibration required: the AMI unit ships factory-calibrated), but the volume of replacements drove sustained employment demand. On the gas side, smart gas meters and automated valve shutoffs began appearing in new construction, and advanced pressure regulators with remote-readable diagnostic ports became standard in higher-pressure industrial and commercial service.

    Effect on the work

    The AMI deployment wave sustained meter-installer employment through the 2000s and early 2010s despite the smaller per-installation labor content of smart meters versus traditional electromechanical units. After the initial deployment wave concluded (roughly 2018-2022), the installed base created an ongoing maintenance workload but reduced the volume of new-installation work, contributing to a modest contraction in total occupation employment from approximately 56,000 in 2000 to around 47,700 in 2024.

    Work toolChanging equipment
  • Next-generation AMI 2.0 + IIoT valve monitoring (grid modernization and infrastructure-hardening era)

    As the first-generation AMI 1.0 smart meter fleet approaches the end of its rated life (typically 15-20 years for residential units, meaning 2020-2030 replacement cycles for the units deployed 2005-2015), utilities are planning AMI 2.0 deployments with two-way broadband communication, edge computing capability, and tighter integration with demand response and outage management systems. On the natural gas side, the US Department of Transportation's Pipeline and Hazardous Materials Safety Administration (PHMSA) issued pipeline safety rules in the 2010s and 2020s mandating pressure-monitoring, valve inspection, and automatic shutoff valves on higher-consequence pipelines. These regulatory requirements create sustained work for valve and control installers and repairers: every automatic shutoff valve on a gas distribution main must be periodically exercised, calibrated, and tested to confirm it closes within specification. The present-day worker carries a rugged handheld device loaded with the utility's asset management system, connects to smart-meter communications networks via proprietary protocols, and diagnoses valve actuator performance via diagnostic ports, but still does the physical work of torquing fittings, pressure-testing seals, and confirming safety shutoff action in the field.

    Bedside monitoringVitals at a glance
Projection cone · present → 2034

What credible sources project

Scrub the slider past now to anchor each scenario on the scrubber. The spread is the range of futures credible sources project for this role.

Employment outlook
Projected change in the number of people doing this work.
O*NET / BLS Occupational Outlook (2024-2034)
2034
+1.5%
O*NET summary of BLS occupational outlook for 49-9012: "slower than average" growth category, with approximately 3,900 projected job openings per year over 2024-34 due to growth and net replacements. The O*NET figure reflects both growth and turnover-driven openings, making total annual job opportunities larger than the net employment change implies. The occupation benefits from a consistent pipeline of replacement need: utility meter and valve workers are predominately drawn from mid-career trade apprenticeship paths, with average ages skewing older, suggesting above-average retirement-driven turnover.
BLS National Employment Matrix 2024-34
2034
+1.3%
BLS Employment Projections program, National Employment Matrix, 2024-34 cycle. Projected employment rises from 47,700 (2024) to approximately 48,300 (2034), an increase of about 600 positions (+1.3%). This is classified as slower than average growth against an all-occupations average of approximately 4%. The BLS methodology models continued demand for valve and regulator maintenance in expanding gas distribution and industrial utility networks, offset by reduced new-installation volume as AMI 1.0 deployments tail off and AMI 2.0 replacement cycles have not yet peaked. The occupation's safety-critical nature (gas distribution, high-voltage metering) makes full remote-servicing implausible, providing a floor on employment.
Today, in this role

What's shifting in the work right now

The historical view above shows how this role has moved. This is the present-day detail: which AI tools are picking up which tasks, where the edge still is, and the natural directions this work can grow.

What's changing in your day

Three parts of your work where AI is already doing real lifting, and what stays yours.

AI is sitting alongside you hereRecord maintenance information, including test results, material usage, and repairs made.

Record maintenance information, including test results, material usage, and repairs made.[2]

Where your edge is

AI is sitting alongside you hereDisassemble and repair mechanical control devices or valves, such as regulators, thermostats, or hydrants, using power tools, hand tools, and cutting torches.

Disassemble and repair mechanical control devices or valves, such as regulators, thermostats, or hydrants, using power tools, hand tools, and cutting torches.[2]

Where your edge is

AI is sitting alongside you hereLubricate wearing surfaces of mechanical parts, using oils or other lubricants.

Lubricate wearing surfaces of mechanical parts, using oils or other lubricants.[2]

Where your edge is

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The data behind this timeline

On record since1888
Latest tracked employment46,920 (US, 2024)
Latest median pay$74,690 (2024)
Outlook+1.3% by 2034 (BLS National Employment Matrix 2024-34)
View all 25 cited data points
YearUS employmentMedian annual paySource
1956n/a$4,200ESTIMATE
199058,000n/aESTIMATE
200056,000n/aESTIMATE
200337,840$42,540BLS-OEWS
200437,260$43,710BLS-OEWS
200538,640$44,120BLS-OEWS
200642,270$45,440BLS-OEWS
200743,160$46,140BLS-OEWS
200843,900$47,040BLS-OEWS
200942,180$47,240BLS-OEWS
201043,430$48,430BLS-OEWS
201142,450$49,600BLS-OEWS
201240,310$50,960BLS-OEWS
201340,940$52,980BLS-OEWS
201441,290$53,140BLS-OEWS
201542,510$54,100BLS-OEWS
201645,740$54,520BLS-OEWS
201747,700$55,850BLS-OEWS
201851,730$56,070BLS-OEWS
201952,270$58,100BLS-OEWS
202050,660$60,580BLS-OEWS
202144,870$62,760BLS-OEWS
202246,410$64,810BLS-OEWS
202347,780$70,100BLS-OEWS
202446,920$74,690BLS-OEWS
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