Testing Guides

What Contaminants Are Found in Private Well Water?

Unlike municipal water, private wells are not tested or treated before delivery to your tap. What’s in your water depends entirely on your local geology, land use, and well condition. Here are the most common contaminants, where they come from, and what they mean.

📌 Key Point

Most private well contaminants have no taste, color, or odor at harmful concentrations. The only way to know what’s in your water is to test it. Don’t rely on sensory indicators alone.

Biological Contaminants

Coliform Bacteria

Total coliform bacteria are the most commonly detected contaminant in private wells. They serve as indicators of broader contamination. Their presence means the well may be vulnerable to more dangerous pathogens. Sources include cracked well casings, flooding, nearby septic systems, and animal activity.

About 1 in 5 private wells tested nationally shows some form of bacterial contamination in a given year, though rates vary enormously by region and well construction. See what to do if you test positive →

E. coli (Fecal Coliform)

E. coli specifically indicates fecal contamination—human or animal waste has entered the water supply. This is a more serious finding than total coliform alone. Sources include nearby septic failure, livestock operations, and surface-water infiltration through an inadequate wellhead seal.

Giardia and Cryptosporidium

Parasitic protozoans that can survive standard chlorination. More common in surface water (dug wells, springs) than deep drilled wells. Causes gastrointestinal illness. Standard water tests don’t screen for these automatically—you need to specifically request protozoan testing if you have a shallow well or suspect surface water intrusion.

Chemical Contaminants

Nitrates

Nitrate is one of the most widespread chemical contaminants in private wells, particularly in agricultural areas. Sources: fertilizer application, livestock manure, failing septic systems. The EPA MCL of 10 mg/L is set specifically to protect infants under 6 months, in whom high nitrate levels can cause methemoglobinemia (“blue baby syndrome”).

Nitrates are tasteless and odorless. Boiling water does not remove nitrates—it concentrates them. Reverse osmosis or ion exchange at the point of use is the standard treatment.

Arsenic

Arsenic occurs naturally in bedrock in many U.S. regions, including New England, the Upper Midwest, and parts of the Southwest. Long-term exposure above the EPA MCL of 0.010 mg/L (10 ppb) is associated with increased risk of bladder and lung cancer, cardiovascular disease, and diabetes. It has no taste or odor.

Arsenic levels can vary significantly even between neighboring wells in the same area, depending on which rock formations the well draws from. If you’re in an arsenic-prone region, test specifically for it at least every 2 years.

Lead

Lead is rarely present in the groundwater itself. Most lead contamination in well water comes from lead solder used in plumbing installed before 1986, or from brass fixtures containing lead alloys. Acidic water (low pH) dramatically accelerates lead leaching from these materials.

There is no safe level of lead exposure for children. Even “low” lead levels below the EPA Action Level of 15 ppb can contribute to developmental impacts. If your home has plumbing installed before 1986 and your water is acidic, test for lead and consider point-of-use NSF-53 certified filtration.

Radon

Radon dissolved in well water off-gases into the air when you use water (showering, washing dishes). In homes where radon-in-water is a concern, the airborne radon risk from the water may exceed the direct ingestion risk. New England, parts of Appalachia, and areas with granite geology have the highest radon potential.

Radon in water is measured in picocuries per liter (pCi/L). The EPA recommends treatment if radon in water exceeds 4,000 pCi/L (the level that typically contributes 0.4 pCi/L to indoor air). Point-of-entry aeration or granular activated carbon (GAC) systems are the primary treatment methods.

Volatile Organic Compounds (VOCs)

VOCs include gasoline components (BTEX: benzene, toluene, ethylbenzene, xylene), dry cleaning solvents (PCE, TCE), and industrial chemicals. Sources include leaking underground storage tanks, dry cleaners, and industrial facilities. Many VOCs are known or suspected carcinogens at elevated concentrations.

If you live within a mile of a gas station, dry cleaner, industrial facility, or former agricultural chemical storage site, request a VOC panel as part of your testing.

Naturally Occurring Inorganic Minerals

Iron

One of the most common aesthetic issues with well water. Iron causes orange-red staining on fixtures, laundry, and appliances, and gives water a metallic taste above about 0.5 mg/L. The EPA SMCL is 0.3 mg/L. Not a health risk at concentrations typically found in wells, but damaging to appliances and plumbing over time.

Manganese

Similar to iron in aesthetic effects (black or dark brown staining). The EPA issued a health advisory of 0.3 mg/L for manganese based on concerns about neurological effects with long-term exposure at higher levels, particularly in infants fed formula mixed with well water. The SMCL for taste/odor/staining is 0.05 mg/L.

Hardness (Calcium and Magnesium)

Hard water is not a health concern but causes scale buildup in water heaters and pipes, reduces soap effectiveness, and shortens the life of appliances. Water above 120 mg/L as CaCO3 is considered “hard.” Water softeners (ion exchange) are the standard treatment.

Hydrogen Sulfide

The source of the “rotten egg” smell in some well water. Produced by sulfur bacteria or occurs naturally in some geological formations. Not a direct health hazard at concentrations typically found in private wells, but unpleasant and can corrode plumbing.

Emerging Contaminants

PFAS (Per- and Polyfluoroalkyl Substances)

Often called “forever chemicals,” PFAS are increasingly detected in private wells near industrial facilities, military bases (AFFF fire-suppression foam), landfills, and some agricultural areas. The EPA in 2024 set MCLs for six PFAS compounds—the first federal drinking water limits for these substances.

If your well is within 1–2 miles of a known PFAS-contaminated site, test specifically for PFAS using EPA Method 533. Granular activated carbon (GAC) or reverse osmosis filters can reduce PFAS at point of use.

How do I know which contaminants to test for?
Start by contacting your state health department or using the EPA’s “Private Drinking Water Wells” resource for state-specific guidance. As a baseline, test annually for bacteria, nitrates, and pH. Add arsenic if you’re in a bedrock-heavy region, lead if you have pre-1986 plumbing, and VOCs if you’re near potential chemical sources. A comprehensive first-time test when you move to a new well-served home is the best foundation.
My water looks and tastes fine — does that mean it’s safe?
No. Arsenic, nitrates, bacteria, radon, lead, and many VOCs are all completely tasteless, odorless, and colorless at concentrations that can cause health effects. Sensory indicators are useful for some issues (iron, manganese, hydrogen sulfide, pH) but should never be relied on as a substitute for testing.
Disclaimer This guide is for educational purposes. Contact your local health department for region-specific testing recommendations. Health effects information is based on EPA standards and peer-reviewed public health literature.