Judging from the docs of Random.nextInt(int n) which obviously needs to solve the same problem, they seem to have concluded that you can’t do better than “resampling if out of range”, but that the penalty is expected to be negligible.

From the docs:

The algorithm is slightly tricky. It rejects values that would result in an uneven distribution (due to the fact that 2³¹ is not divisible by n). The probability of a value being rejected depends on n. The worst case is n=2³⁰+1, for which the probability of a reject is 1/2, and the expected number of iterations before the loop terminates is 2.

I’d suggest you simply use the randomizing constructor you mentioned and iterate until you reach a value that is in range, for instance like this:

public static BigInteger rndBigInt(BigInteger max) {
    Random rnd = new Random();
    do {
        BigInteger i = new BigInteger(max.bitLength(), rnd);
        if (i.compareTo(max) <= 0)
            return i;
    } while (true);
}

public static void main(String... args) {
    System.out.println(rndBigInt(new BigInteger("8180385048")));
}

For your particular case (with max = 8180385048), the probability of having to reiterate, even once, is about 4.8 %, so no worries 🙂