Uniform convergence, bounded derivatives

Eventually I got some help and this is what I have:

Let $\epsilon>0$:

We know $[0,1]\subseteq\bigcup_{x\in[0,1]} B(x,\epsilon)$ is an open cover for the interval. Using Heine-Borel theorem, we know that $[0,1]$ is compact, and so, we have $I=\{1,...,k\}$ so $[0,1]\subseteq\bigcup_{i\in I} B(x_i,\epsilon)$ is a finite cover.

We have pointwise convergence, so for $i\in I \ \exists N_i\ \forall n,m\ge N_i\ : |f_n(x_i)-f_m(x_i)|<\epsilon$

We know, by using the mean value theorem that $\forall n\in \mathbb N\ \forall x<y\in [0,1] \ \exists c\in (x,y) : |\frac{f_n(y)-f_n(x)}{y-x}|=|f_n'(c)|\le 3$ $\Rightarrow$ $|f_n(y)-f_n(x)|\le 3\cdot |y-x|$

More specifically $\forall x\in B(x_i,\epsilon) : |f_n(x)-f_n(x_i)|\le 3\cdot |x-x_i|\le 3\cdot\epsilon$

Now, we choose $N= \max_{i\in I}\{N_i\}$. In conclusion:

$$\forall n,m \ge N \land \forall x\in [0,1] : |f_n(x)-f_m(x)|\le |f_n(x)−f_n(x_i)|+|f_n(x_i)−f_m(x_i)|+|f_m(x_i)−f_m(x)|<3\cdot \epsilon +\epsilon +3\cdot \epsilon =\epsilon '$$

We used Cauchy criteria for the sequence $\Rightarrow $ the sequence converges uniformly.

$\Downarrow $

$Sup_{x\in [0,1]}|f_n(x)-f(x)|\rightarrow 0 \ as\ n\rightarrow \infty $