Let $X_n$ be a cauchy sequence not constant in a complete metric space $M$
Prove/Disprove: The limit point of $A=\{X_n\} \in M$.
Let us assume that the limit point of $A=\{x_n\} \not \in M$. Therefore $X_n\rightarrow x$ but $x\not \in M$ so $X_n$ is a cauchy sequence which does not converges which mean that the metric space $M$ is not complete, contradiction
Is the proof valid? am I missing some points or formality?
There's a small problem with your proof: it assumes that there are limit points. But since $M$ is complete, that's trivial. Indeed, there's only one limit point.
But my main objection is: it makes no sense to assume that the limit of the sequence doesn't belong to $M$. After all, $M$ is the whole space.