$\zeta^{(k)}(s) < 0$ for $s\in (0,1)$
The coefficients computed in the comments appear to imply that the Taylor expansion at $s=0$ of $\zeta(s)+\frac1{1-s}-\frac12$ has very small coefficients, which would imply the result.
Following section 2.1 in Titchmarsh Theory of the Riemann zeta function, by integration/summation by parts (or one step of Euler-Maclaurin), $$\zeta(s)=\frac1{s-1}+\frac12+s\int_1^{\infty}\frac{1/2-\{x\}}{x^{s+1}}dx$$ absolutely convergent for $\Re(s)>0$ where $\{x\}$ denotes the fractional part of $x$.
Integrating by parts again (or two steps of Euler-Maclaurin), $$\zeta(s)=\frac1{s-1}+\frac12+\frac{s}{12}-(s+1)\int_1^{\infty}(\{x\}^2-\{x\}+\frac16)x^{-s-2}dx$$
Consider the integrand $(\{x\}^2-\{x\}+\frac16)x^{-s-2}dx$ as a function of $s$. Its Taylor coefficients are alternating in sign and dominated by the coefficients of $\frac16x^{-s-2}$, so the Taylor coefficients of the absolutely convergent integral are dominated by those of $$\int_1^{\infty}\frac16x^{-s-2}dx = \frac1{6(s+1)}$$ and the result follows.
Here is a proof that $\zeta^{(i)}(s) < 0$ for all $s \in [0,1[$ and $i \in \mathbf N$ (I can't say whether it counts as brief and clean, though).
We'll use that the Riemann zeta can be expanded as a Laurent series about $s = 1$, so that $$\tag{1} \zeta(s) = \frac{1}{s-1} + \sum_{n =0}^\infty \frac{(-1)^n \gamma_n}{n!} (s-1)^n,\quad\text{for all }s \ne 1,$$ where $\gamma_n$ is the $n$-th Stieltjes constant. We'll also need an inequality of A.F. Lavrik from
On the main term of the divisor's problem and the power series of the Riemann's zeta function in a neighbourhood of its pole, Trudy Mat. Inst. Akad. Nauk. SSSR 142 (1976), 165-173 (in Russian),
which yields $$ \tag{2}|\gamma_n| \le \frac{n!}{2^{n+1}},\quad\text{for all }n \in \mathbf N^+. $$ In particular, (2) implies that the series on the right-hand side of (1) is absolutely convergent in the interval $[-a,a]$ for every $a \in [0,1[$.
With this in mind, let $k \in \mathbf N^+$. We have $$ \zeta^{(k)}(s) = - \frac{k!}{(1-s)^{k+1}} + (-1)^k \sum_{n\ge k} \frac{\gamma_n}{(n-k)!} (1-s)^n,\quad\text{for all }s \in {]-1,1[}\,, $$ and hence $$ \tag{3}\zeta^{(k)}(0) = - k! + (-1)^k \sum_{n\ge k} \frac{\gamma_n}{(n-k)!}. $$ We claim $$ \tag{4}\sum_{n \ge k} \frac{\gamma_n}{(n-k)!\,k!} < 1. $$ Indeed, a classical result from Section 1 of
W.E. Briggs, Some Constants Associated with the Riemann Zeta-Function, Mich. Math. J. 3 (1955), No. 2, 117-121,
gives that $\gamma_n < 0$ for infinitely many $n$. Therefore, it is sufficient for (4) to hold that $$ \sum_{n \ge k} \frac{|\gamma_n|}{(n-k)!\,k!} \le 1. $$ This, in turn, follows from (2) and the fact that $$ \sum_{n \ge 0} \frac{1}{2^{n+1}} \binom{n}{m} = 1, \quad\text{for all }m \in \mathbf N $$ (see Noam Elkies's comment below). By (3) and the considerations made by Gerald Edgar in the comments to the OP, we can thus conclude that $\zeta^{(i)}(s) < 0$ for all $s \in [0,1[$ and $i \in \mathbf N$ (recall that $\zeta(0) < 0$).