Answer
$\bf True$.
Work Step by Step
$\bf True$.
For this equation to be separable, we would have to be able to write $3y-2x+6xy-1$ from the equation $y'=3y-2x+6xy-1$ in the form of $f(x)g(y)$, where $f(x)$ is a function of $x$ only and $g(y)$ is a function of $y$ only. This can be written as:
$$y=3y-2x+6xy-1$$$$y=6xy+3y-2x-1$$$$y=(3y-1)(2x+1)$$
Hence, we can write $y'=3y-2x+6xy-1$ in the form of $f(x)g(y)$ where $f(x)=2x+1$ and $g(y)=3y-1$