Where's the Monk Contest Challenge Continues : Part 2

01The Challenge Continues!

Our first Where’s the Monk contest wrapped up with a winner — read how José Manuel Echevarría Rubio, PhCandidate in Marine Sciences at CICIMAR-IPN nailed his prediction — and now we’re back with a new stretch of ocean, a new contest, and a new deadline: July 20, 2026 at 11:59 PM PDT.  Position updates revealed until July 13, 2026 at 11:59 PM PDT.

Somewhere along the North Atlantic, a profiling float named “The Monk” is drifting along — guided by currents, thermoclines, and the physics of the ocean. It’s one of Seatrec’s infiniTE™ floats, powered by thermal energy harvested from the temperature gradient between warm surface waters and the cold deep.

We know its last confirmed position. What we don’t know — and what we’re asking you to figure out — is exactly where The Monk will surface on July 20, 2026 at 11:59 PM PDT.

No hints. Just your read of the ocean, or your most inspired guess. Use the live tracker to study its trajectory. Dig into Gulf Stream data. Or go with your gut. Closest guess wins — ties broken by earliest submission.

Contest Brief

⏰ Contest Deadline

July 20, 2026 · 11:59 PM PDT

 

🔍 Track Live

Open live tracker →

📅 Position Updates REVEALED Until

July 13, 2026 · 11:59 PM PDT

02What Is the infiniTE™ Float?

The infiniTE™ is Seatrec’s flagship ocean profiling float, designed to operate autonomously for years without battery replacement — harvesting energy from the ocean’s natural temperature gradient to power itself and collect critical oceanographic data on every dive cycle.

The Monk has been tracing the currents of the Atlantic, and its track tells a story of eddies, meanders, and the Gulf Stream system. Where it ends up next is yours to predict.

🏆

Win the Exclusive Seatrec T-Shirt

Seatrec infiniTE T-Shirt

The winner receives this exclusive Seatrec “Infinite Energy · Deeper Insights” infiniTE™ T-shirt — limited edition, not for sale.

One Winner · Closest Coordinates Wins

03How to Enter

To win the shirt, study the tracker, make your prediction, and submit your coordinates. Closest entry wins. Ties broken by the earliest valid submission. We’ll announce the winner shortly after July 20th.

STEP 01

Study the tracker

Watch The Monk’s trajectory at the live tracking link. Positions update through July 13, 2026 · 11:59 PM PDT.

STEP 02

Make your prediction

Pick a latitude and longitude for where The Monk will surface on July 20, 2026 at 11:59 PM PDT.

STEP 03

Submit coordinates

Drop your numbers into the official entry form before the deadline.

STEP 04

Win the shirt

Closest entry wins. Ties broken by the earliest valid submission. We’ll announce the winner shortly after July 20.

The Series Continues

The Monk is Continuing its Journey

Our next contest is live. Same float, new currents, new prediction, new chance to win.

Enter the New Contest →
Register for the Webinar


We have a Winner! Where's the Monk Contest: Part 1

01We have a Winner!

José Manuel in Conception Bay, Newfoundland (NF-POGO Centre of Excellence: Observational Oceanography

Our first Where’s the Monk contest asked one question: where would The Monk — one of Seatrec’s infiniTE™ floats, drifting along the North Atlantic — surface on July 5, 2026, at the closest time before 11:59 PM PDT? Predictions came in from around the world. Landing within 100 km of a float that’s been riding the Gulf Stream’s eddies and meanders for two weeks is genuinely hard — only four entries managed it. And when the Monk surfaced at 38.5626°N, 50.6690°W, at 3:27 PM PDT, one prediction stood closest of all, just 52 km away: José Manuel Echevarría Rubio, PhD Candidate in Marine Sciences at CICIMAR-IPN. (Shout out to his advisor, Dr. Guillermo Martínez-Flores!). 

 

02The Results

José Manuel’s prediction (green) landed closest of all, with three more entries (yellow) also within 100 km — a genuinely tough target to hit. The rest of the yellow dots, spread across the map, show just how far the ocean can carry even a well-researched prediction.

All 24 predictions plotted against The Monk’s actual surfacing point. Green: José Manuel (winner). Yellow: other entries

The field made it a real race. Entries came in from around the world, and only four landed within 100 km of The Monk’s surfacing position — José Manuel’s the closest among them. Between them, the top four spanned Mexico, France, and both coasts of the United States — and all four are expert oceanographers.


Every entry, ranked by distance. Only four predictions worldwide landed within 100 km.

03The Winning Prediction

José Manuel’s prediction graphic.

Oceanographers describe moving water in two ways. The Eulerian view watches the ocean from fixed points, like a moored buoy reporting the current flowing past it, or a weather station reporting the wind. The Lagrangian view follows the water itself, like a message in a bottle going wherever the ocean takes it. Predicting The Monk is a classic Lagrangian problem: the float is a kind of diving bottle, and the question is where the ocean carries it.

That is what makes it hard. A Lagrangian forecast has to get many things right at once, and an error in any one of them can grow day by day:

  • The mean current — the Gulf Stream is a geostrophic current, driven by sea surface height gradients, that can advect a float over 100 km a day in its core and far less just outside it. Get the current’s strength or position wrong and the whole trajectory shifts.
  • Mesoscale eddies — warm-core and cold-core rings, tens to hundreds of kilometers across, that pinch off from meanders in the main current. A float caught in one gets trapped in rotational flow instead of advecting downstream — you can see exactly this looping behavior in The Monk’s track.
  • Meanders — baroclinic instability makes the Gulf Stream snake rather than flow straight; whether a given meander sweeps the float north or south of the mean path can matter by hundreds of kilometers.
  • Vertical shear — a profiling float spends much of its time below the surface, where current speed and direction can differ substantially from the surface, so the model has to resolve the current field at depth, not just at the surface.
  • Chaotic dynamics — Lagrangian trajectories are sensitive to initial conditions; small position uncertainties amplify over time, the same underlying reason weather forecasts lose skill with lead time. A few kilometers of error early on can compound into a much larger miss days later.
  • Data latency — position updates stopped on June 28; the prediction target was July 5. That’s seven days of dead reckoning, forecasting motion with no fresh GPS fix to correct against.

For me, it was like a fun programming exercise to also test the methodologies I use as part of my Ph.D.

— José Manuel Echevarría Rubio

A note for any Gen-AI submissions: the four closest entries came from oceanographers; AI-assisted guesses landed about six times farther out. The ocean is a complicated system! Join our webinar on August 18 and learn how the humans did it.

04The Interview

▶ CaTCH AN INSIGHT

We met with José Manuel to talk about his prediction, his research, and the ocean itself. He’ll be sharing more during a webinar scheduled for August 18th.

 A QUICK SNIPPET BEFORE THE ACTUAL WEBINAR →

What made you enter Where’s the Monk?

I saw the LinkedIn post, and part of my PhD thesis is modeling the Lagrangian transport of pelagic sargassum.

Walk us through your approach — what data and models did you use?

First, I got the whole track of the float since its deployment in the Gulf of Mexico. I used Copernicus Marine data — the Global Ocean Physics Reanalysis (GLORYS) current fields — with eight depth levels from the surface down to about 900 meters and built a cube of currents. I modeled the float’s trajectory going down into the deepest layer and back up to the surface every 11 hours, at about 0.1 meters per second for the descent and buoyant ascent rate.

I used two different datasets: a reanalysis for the hindcast (past ocean current data)  and a forecast product for the actual prediction — which has more uncertainty, so I had to build an envelope of possible trajectories rather than a single path. I ran the simulations using the OpenDrift library, developed by the Norwegian Meteorological Institute. To validate the model, I did a grid search to tune all the parameters against the float’s own past positions (hindcast) before generating the forecast — the same validation approach I use in my PhD work with in-situ drifters for sargassum transport.

What was the hardest part of the prediction? What almost threw you off?

I had to use two different datasets — a reanalysis for the hindcast, the past ocean current data, and a different forecast product for the actual prediction. The forecast has uncertainties; it’s not as accurate, so I had to build an envelope of all the possible trajectories and adjust parameters accordingly. That was the trickiest part.  

But it was a good exercise, because it’s the same approach I’m using right now to forecast the date and location of the sargassum beaching events.

The Monk surfaced 52 km from your coordinates. What did you get right?

I followed a good methodology — it wasn’t a lucky guess.

What first drew you to oceanography?

I grew up two blocks away from the Caribbean Sea, and the ocean has always been part of my life. My cousin, who is like my sister, studied marine biology and worked at the National Aquarium in Havana (now a Professor of Marine Science in Spain). I went to the Aquarium frequently with her, and she was the one who introduced me to this field of science.

You’re working on your dissertation — what’s it about, and what’s next for you?

My dissertation is on the factors that are controlling the proliferation of sargassum in the equatorial Atlantic — known as the Great Atlantic Sargassum Belt. First, I need to detect the sargassum, calculate the coverage, and simulate the trajectories. And the final part of my PhD is to try to find what is driving the blooms. Looking ahead, I want to stay right at that intersection, continuing to work on projects that combine remote sensing with ocean modeling to solve complex environmental challenges.

Any advice for people entering the next contest?

The first advice I’ll give is to have a solid ground truth — the past track the float actually took — and validate your model against that in-situ data before you attempt a forecast. Try to do the validation first. I do a lot of machine learning too, and it’s the same principle: you train your model, then validate on data the model hasn’t seen before

Plans after your dissertation defense?

I want to do a postdoc, maybe at the same institution — I’m not sure yet, but for sure I want it to combine remote sensing and physical oceanography. I’ve worked a lot with remote sensing already; for example, I did a project researching kelp forests on the West Coast, in the Pacific Northwest, and I really love kelp forests and the role they play in coastal ecosystems. I want to continue working on combining remote sensing with physical oceanography and ecological modeling. The first advice I’ll give is to have a solid ground truth — the past track the float actually took — and validate your model against that in-situ data before you attempt a forecast. Try to do the validation first. I do a lot of machine learning too, and it’s the same principle: you train your model, then validate on data the model hasn’t seen before

05What’s Next

José Manuel takes home the exclusive Seatrec “Infinite Energy · Deeper Insights” infiniTE™ T-shirt — and he’s not done.  He’s going to compete in the next contest, and on Tuesday, August 18, 2026, at 9:00 AM PDT, he’ll join Dr. Paul Chamberlain, Postdoctoral Researcher at Scripps Institution of Oceanography, for our webinar “Finding The Monk: How to Predict Where the Ocean Takes a Float” — a walkthrough of real trajectory-prediction techniques, including how the winning forecast came together.  José Manuel will defend his Ph.D. thesis early August, and by the time of our webinar, he will be Dr. Manuel.   

The Series Continues

The Monk is Continuing its Journey

Our next contest is live. Same float, new currents, new prediction, new chance to win.

Enter the New Contest →
Register for the Webinar


Where's The Monk?

Mission Brief

The Monk is drifting.

On June 23rd, the Monk was at 39.1239°N, 55.4052°W — carried by currents, thermoclines, and the physics of the deep.

01The Challenge

Somewhere in the North Atlantic, a profiling float named "The Monk" is drifting — guided by currents, thermoclines, and the physics of the ocean. It's one of Seatrec's infiniTE™ floats, powered by thermal energy harvested from the temperature gradient between warm surface waters and the cold deep.

We know its last confirmed position. What we don't know — and what we're asking you to figure out — is exactly where The Monk will surface on July 5, 2026 at 11:59 PM PDT.

No hints. Just your read of the ocean, or your most inspired guess. Use the live tracker to study its trajectory. Dig into Gulf Stream data. Or go with your gut. Closest guess wins — ties broken by earliest submission.

Contest Brief

📍 Last Confirmed Position ON 6/23/26

39.1239°N, 55.4052°W

⏰ Contest Deadline

July 5, 2026 · 11:59 PM PDT

🔍 Track Live

Open live tracker →

📅 Position Updates REVEALED Until

June 28, 2026 · 11:59 PM PDT

02What Is the infiniTE™ Float?

The infiniTE™ is Seatrec's flagship ocean profiling float, designed to operate autonomously for years without battery replacement — harvesting energy from the ocean's natural temperature gradient to power itself and collect critical oceanographic data on every dive cycle.

The Monk has been tracing the currents of the Atlantic, and its track tells a story of eddies, meanders, and the Gulf Stream system. Where it ends up next is yours to predict.

🏆

Win the Exclusive Seatrec T-Shirt

Seatrec infiniTE T-Shirt

The winner receives this exclusive Seatrec "Infinite Energy · Deeper Insights" infiniTE™ T-shirt — limited edition, not for sale.

One Winner · Closest Coordinates Wins

03How to Enter

STEP 01

Study the tracker

Watch The Monk's trajectory at the live tracking link. Positions update through June 28, 2026 · 11:59 PM PDT.

STEP 02

Make your prediction

Pick a latitude and longitude for where The Monk will surface on July 5, 2026 at 11:59 PM PDT.

STEP 03

Submit coordinates

Drop your numbers into the official entry form before the deadline.

STEP 04

Win the shirt

Closest entry wins. Ties broken by the earliest valid submission. We'll announce the winner shortly after July 5.

04Coming Soon: Float Modeling Webinars

Seatrec will be hosting webinars on real float-modeling techniques — ocean current analysis, Argo float data, and trajectory prediction with public datasets. Stay tuned for dates.

Drop Your Coordinates

Ready to Outguess the Ocean?

The Monk is waiting to be found. Closest coordinates win.

Submit Prediction →Open Live Tracker

Contest run by Seatrec. No purchase necessary. Open to residents worldwide, ages 13+. Entrants under 18 must have parental permission. Void where prohibited. Winner contacted by email.


From “How Far from Reality?” to Real-Time Ocean Observation

The North American Gulf Stream as illustrated with the ECCO model.
Credit: Greg Shirah / NASA’s Scientific Visualization Studio

From “How Far from Reality?” to Real-Time Ocean Observation

How Seatrec CEO Yi Chao’s early Gulf Stream research comes full circle in an infiniTE™ Float mission now more than 500 profiles in, from the Gulf of Mexico to the western North Atlantic

Three decades ago, long before Seatrec existed, our CEO and founder, Yi Chao, was working on one of the hardest problems in physical oceanography: how to model the Gulf Stream realistically as it separates from the U.S. coast near Cape Hatteras. Today, a Seatrec infiniTE™ float is tracing that broader Atlantic system in the real ocean, more than 500 profiles into a mission spanning the Gulf of Mexico, the Florida Straits, and the western North Atlantic.

Seatrec infiniTE™ float iF00008 after 510+ profiles, tracing a path from the Gulf of Mexico through the Florida Straits and up the U.S. East Coast on its way toward the Gulf Stream separation region off Cape Hatteras.

Seatrec infiniTE™ Float iF00008 after 510+ profiles, tracing a path from the Gulf of Mexico through the Florida Straits, up the U.S. East Coast toward the Gulf Stream separation region off Cape Hatteras, continuing into the western North Atlantic.

That connection is more than a coincidence. It is the throughline of Yi’s career. During his Ph.D. at Princeton, Yi studied El Niño. After graduate school, he turned to the Gulf Stream because one question kept bothering oceanographers: why couldn’t models reproduce its separation correctly at Cape Hatteras? For years, that gap was more than a technical frustration. It suggested that even advanced ocean models were still missing something essential about North Atlantic circulation.

In 1996, while at NASA’s Jet Propulsion Laboratory, Yi co-authored “Modeling the Gulf Stream System: How Far from Reality?” The paper marked an important advance in showing that the Gulf Stream could be modeled much more realistically than before. It was one of Yi’s earliest papers at JPL and helped establish a question that would shape much of his career.

Observed Gulf Stream path versus the improved model simulation in Yi Chao’s 1996 paper, showing the breakthrough in reproducing realistic separation near Cape Hatteras.

Observed Gulf Stream path versus the improved model simulation in Yi Chao’s 1996 paper, showing the breakthrough in reproducing realistic separation near Cape Hatteras.

The title of that paper still resonates with us: How far from reality? In many ways, that question sits at the heart of Seatrec. Yi went on to spend roughly 20 years at NASA Jet Propulsion Laboratory working in ocean modeling and satellite oceanography before founding Seatrec in 2016. Our core technology originated at NASA JPL / Caltech, and our mission is to make the ocean more continuously observable by solving one of subsea science’s most stubborn constraints: power.

For decades, oceanographers have had to make difficult tradeoffs. Traditional profiling floats are constrained by primary batteries, which limit mission duration, sampling frequency, and payload flexibility. Satellites transformed our view of the surface ocean, but the subsurface ocean, the heat structure, salinity gradients, mixing, and soundscape, remains much harder to observe persistently. That is the gap Seatrec was built to close.

Seatrec’s answer has been to rethink power from the ocean up. Our infiniTE™ platform harvests electricity from naturally occurring temperature differences between warm surface water and colder depths. As the float cycles through the water column, phase-change materials drive a hydraulic system and generator, producing power for repeated profiling and expanded sensing. The result is a long-endurance platform designed to collect more data, more often, with less dependence on battery replacement and ship support.

This 500-profile mission shows what that looks like in practice. The mission began in the northeastern Gulf of Mexico, south of Destin, Florida. In its first 49 days, the float completed 160 profiles, diving to depths of up to 800 meters while surfacing to transmit real-time data. Equipped with a CTD and passive acoustic hydrophone, it began building a continuous picture of subsurface temperature, salinity, and underwater sound in a region where seeing below the surface matters for both hurricane forecasting and soundscape monitoring.

After 315 profiles, the float entered the Florida Straits, where the mission shifted from broad Gulf drifting to boundary-current sampling. This narrow, deep, high-energy corridor between the Florida Keys and Cuba funnels flow toward the Atlantic and sharpens vertical and horizontal gradients. In this phase, the float was completing about four profiles per day, creating a much denser record of changing subsurface conditions through one of the most dynamic passages in the western Atlantic.

The Gulf Stream system connects the Gulf of Mexico, the Florida Straits, and the western North Atlantic, carrying heat and structure across the basin. Map showing the Gulf Stream system connecting the Gulf of Mexico, the Florida Straits, and the western North Atlantic.

The Gulf Stream system connects the Gulf of Mexico, the Florida Straits, and the western North Atlantic, carrying heat and structure across the basin. Gulf of Mexico Color (3-21-2026), courtesy of NOAA National Centers for Environmental Information (NCEI), from the U.S. Navy satellite analysis archive.

By 480 profiles, the mission had advanced from the Gulf of Mexico through the Florida Straits, up the U.S. East Coast, setting up the next chapter as the float entered the Gulf Stream separation region off Cape Hatteras, the same broader system that defined an early chapter of Yi’s scientific career. What once lived in model grids is now being sampled profile by profile by an autonomous float powered by the ocean’s own thermal gradients.

That is why this milestone feels bigger than a number. Yes, 500 profiles is an operational achievement. But it is also a reminder that the best ocean technology does more than last longer. It changes what is scientifically possible. Seatrec’s milestone is not that this is the first float to sample the Gulf Stream. It is that a thermally powered float is delivering persistent, high-frequency profiling across multiple connected ocean regimes, without the same battery limits that have historically constrained mission duration and sensor use.

Persistent subsurface measurements help reveal the hidden heat structure that can fuel hurricane rapid intensification. They support better understanding of ocean heat transport and water-column structure across connected current systems. And when acoustic sensing is added to the same long-endurance platform, they can also contribute to persistent soundscape monitoring.

For Seatrec, this is a field report. For Yi, it is a full-circle moment. Three decades after asking how far ocean models were from reality, he now leads a company building tools that can stay in that reality longer, profiling through it, transmitting from it, and helping make the ocean more continuously observable. Few scientific careers draw such a direct line from question to platform. This one does.

And the float is still going.

Live tracking: seatrec-floats.com
Data access and collaboration: info@seatrec.com


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