I’d probably write:
>>> lod = [{1: "a"}, {2: "b"}]
>>> any(1 in d for d in lod)
True
>>> any(3 in d for d in lod)
False
although if there are going to be a lot of dicts in this list you might want to reconsider your data structure.
If you want the index and/or the dictionary where the first match is found, one approach is to use next and enumerate:
>>> next(i for i,d in enumerate(lod) if 1 in d)
0
>>> next(d for i,d in enumerate(lod) if 1 in d)
{1: 'a'}
>>> next((i,d) for i,d in enumerate(lod) if 1 in d)
(0, {1: 'a'})
This will raise StopIteration if it’s not there:
>>> next(i for i,d in enumerate(lod) if 3 in d)
Traceback (most recent call last):
File "<ipython-input-107-1f0737b2eae0>", line 1, in <module>
next(i for i,d in enumerate(lod) if 3 in d)
StopIteration
If you want to avoid that, you can either catch the exception or pass next a default value like None:
>>> next((i for i,d in enumerate(lod) if 3 in d), None)
>>>
As noted in the comments by @drewk, if you want to get multiple indices returned in the case of multiple values, you can use a list comprehension:
>>> lod = [{1: "a"}, {2: "b"}, {2: "c"}]
>>> [i for i,d in enumerate(lod) if 2 in d]
[1, 2]