It is chaos season in Major League Baseball. There are multiple very feasible scenarios in which three teams wind up tied for the two American League wild-card slots and set off a chain of events in which baseball has four win-and-you’re-in games instead of the typical two. Same would go for a four-team tie, which is also still alive.
And then there’s the ultimate madness: five teams, same record, a scenario that’s so wild MLB’s tiebreaker doesn’t even account for it. The chances of it happening are infinitesimal, but so were those of the Seattle Mariners still being in the thick of things, and here we are.
Let this serve as your chaos primer on the various scenarios that could play out over the next week. We’ll go from boring to spicy, and assign odds to the various scenarios via a simulation from our friends at FiveThirtyEight. Know this: There’s about a 1-in-3 chance for an extra game Monday, and there’s a 1-in-10 shot at multiple games before the wild card. But before we get to any of that, an introduction to your contestants.
Current standings
New York Yankees: 89-67
Boston Red Sox: 88-68
Toronto Blue Jays: 87-69
Seattle Mariners: 87-70
Oakland A’s: 85-72
Schedule
Yankees: 3 at Toronto, 3 vs. Tampa Bay
Red Sox: 3 at Baltimore, 3 at Washington
Blue Jays: 3 vs. New York, 3 vs. Baltimore
Mariners: 2 vs. Oakland, 3 vs. Los Angeles Angels
A’s: 2 at Seattle, 3 at Houston
Current state of affairs
Yankees: Coming off a sweep of the Red Sox, riding a six-game winning streak and facing the hardest schedule of all contenders.
Red Sox: Flailing after the Yankees rudely interrupted a seven-game winning streak but heartened by facing two bad teams.
Blue Jays: Ready to ride the Rogers Centre vibe to their first full-season playoff appearance since 2016.
Mariners: Believe. They’re still alive for the West division title (though with Houston’s magic number at two we didn’t involve them with this exercise).
A’s: Yeah, this probably isn’t gonna happen.
Buster Olney examines the teams in contention for the American League wild card, and breaks down potential tiebreaker scenarios.
Scenario 1: Two teams have the two best records with no ties
Boring. The team with the better record would host the other on Oct. 5 in the AL wild card game. The winner would likely face the Rays, who clinch the top seed in the league with one more win or a Houston loss.
Chance it happens: 45.03%
Scenario 2: Two teams tie atop the wild-card standings
Boring 2.0. The best head-to-head record hosts the game. The only tie scenario is Boston and Oakland, and because the Red Sox are better in intra division games, they win the tiebreaker.
Chance it happens: 23.57%
Scenario 3: Two-team tie for second wild-card slot
This is a little more fun. The two teams would play a Game 163 on Monday. The winner would travel to the top wild-card seed for Tuesday’s game.
Chance it happens: 20.83%
Scenario 4: Three-team tie for two wild cards
All right. Now we’re talking. This may be the most realistic combination of chaos and excitement. And there are a bunch of different ways to get there.
Five teams can end the season with 89 wins.
Five teams can end the season with 90 wins.
Four teams can end the season with 91 wins.
Four teams can end the season with 92 wins.
We will tease out all of the permutations, but for now, here is how a three-teamer among the East teams would work:
– The team with the best regular-season head-to-head record against each of the others — in this case, Boston — would get what amounts to the No. 1 pick in the tiebreaker draft.
– It could choose to be Club A, Club B or Club C
– Club A gets to host the first tiebreaker game against Club B. The winner advances to the wild-card game.
– The loser goes on the road to face Club C the next day. The winner advances to the wild-card game to face the first winner.
The Red Sox clearly would choose to be Club A. Two bites at the apple and one home game? It’s a clear advantage.
Because the Blue Jays hold the regular-season advantage over New York, they would get to choose between Club B and C. As easy a choice as it theoretically – two chances to win is better than one – being Club B would mean having to play win-and-get-in games on back-to-back days in Fenway Park and Yankee Stadium. Being Club C, on the other hand, is an extra day of rest, no bullpen questions and soon-to-be AL Cy Young winner Robbie Ray starting in front of a large and loud Rogers Centre crowd.
Chance it happens: 5.1%
Scenario 4a: Three-team tie for two spots with Toronto, New York and Seattle
This is very specific and not that likely. But it’s a slight twist on the last one because Seattle beat Toronto in their season series, Toronto beat New York and New York beat Seattle. Because the tiebreaker is combined record in games not against the other two teams, the draft order would be Yankees, Mariners, Blue Jays.
Chance it happens: 0.46%
Scenario 4b: Three-team tie for second wild-card spot
A sneaky phenomenal outcome that changes the calculus on A, B and C.
In this scenario, Club A and B would have to win two games just to get to the wild-card game. A and B would face off in a win-or-go-home game, and the winner would host C, with the victor there going on the road to face the top wild card.
So instead of Club A being the obvious pick in the draft, Club C would seem to be the No. 1 choice in this scenario: Yes, the team goes on the road, but it has to win only once and gets an extra day of rest. Club A would at least get some consideration, because if you value home-field advantage in the pre-wild-card round, you’d have it.
Chance it happens: 4.66%
Scenario 5: Four-team tie for two wild-card spots
This can happen at 89, 90, 91 or 92 wins.
It’s kind of a milquetoast result, compared to what can be. The teams would get to choose whether they’re Club A, B, C or D based on the combined winning percentage against the other three teams.
Because of the Yankees-Blue Jays series, it isn’t in stone, but currently:
AL East + Seattle: Boston, Toronto, New York, Seattle
AL East + Oakland: Toronto, Boston, New York, Oakland
AL West + Toronto/Boston: Seattle, Boston, Toronto, Oakland
AL West + New York/Boston: Seattle, New York, Boston, Oakland
AL West + New York/Toronto: Seattle, Toronto, New York, Oakland
Club A would host Club B. Club C would host Club D. The winners would play in the wild-card game. The winner of that would face the Rays.
Chance it happens: 0.58%
Scenario 5a: One team wins top wild-card spot, four teams tie for second spot
Now this is the good stuff. And it can happen at 89 or 90 wins.
In this scenario, all five teams that are alive make it. If it happens, the four-team tiebreaker would be in play. There would be A vs. B and C vs. D. The winners of those games would then play one another. And then the winner of that game would finally be in the AL wild-card game.
So, yes. Before the AL wild-card game even happens, there would be three win-or-go-home games. And yup: That would make five do-or-die games before the division series begins. This may be the ideal scenario. Unless you’re into complete madness. In which case …
Chance it happens: .056%
Scenario 6: Five-team tie
Long live chaos! This is such a long shot that MLB, which devoted 2,463 words to its tiebreaker rules, didn’t even bother teasing out what a five-team tiebreaker looks like. So it’s not really clear how this would play itself out after the season.
Here’s how it can happen.
The A’s go 5-0 against Seattle and Houston, the Mariners rally and sweep the Angels, the Blue Jays win 3 of 6 vs. New York and Baltimore, the Red Sox win 2 of 6 vs. Baltimore and Washington and the Yankees win 1 of 6 vs. Toronto and Tampa Bay. Everyone wins 90 games.
That’s it.
One more time: This is an extreme long shot. And it would involve a lot of good teams playing garbage baseball, so perhaps it’s not the scenario worth rooting for. But if entropy is your jam, if anarchy is your angel, if bedlam is your raison d’être, then spend tonight rooting for Oakland and Toronto and hissing at New York, Boston and Seattle.
Chance it happens: .001%, or 1 in 100,000